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<span id="openzim-page-title" class="mw-page-title-main"><span class="mw-page-title-main">Microelectrode array</span></span>
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<p><b>Microelectrode arrays</b> (<b>MEAs</b>) (also referred to as multielectrode arrays<sup id="cite_ref-1" class="reference"><a href="#cite_note-1"><span class="cite-bracket">[</span>1<span class="cite-bracket">]</span></a></sup><sup id="cite_ref-2" class="reference"><a href="#cite_note-2"><span class="cite-bracket">[</span>2<span class="cite-bracket">]</span></a></sup>) are devices that contain multiple (tens to thousands) <a href="Microelectrode" title="Microelectrode">microelectrodes</a> through which neural <a href="Signal_(electronics)" class="mw-redirect" title="Signal (electronics)">signals</a> are obtained or delivered, essentially serving as neural interfaces that connect <a href="Neuron" title="Neuron">neurons</a> to <a href="Electric_circuit" class="mw-redirect" title="Electric circuit">electronic circuitry</a>. There are two general classes of MEAs: implantable MEAs, used <i><a href="In_vivo" title="In vivo">in vivo</a></i>, and non-implantable MEAs, used <i><a href="In_vitro" title="In vitro">in vitro</a></i>. In each class, there are rigid, flexible, and <a href="Stretchable_microelectrode_array" title="Stretchable microelectrode array">stretchable microelectrode array</a>.
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<div class="mw-heading mw-heading2"><h2 id="Theory">Theory</h2></div>
<p>Neurons and <a href="Muscle" title="Muscle">muscle</a> cells create <a href="Ion" title="Ion">ion</a> currents through their <a href="Cell_membrane" title="Cell membrane">membranes</a> when excited, causing a change in <a href="Voltage" title="Voltage">voltage</a> between the inside and the outside of the cell. When recording, the <a href="Electrode" title="Electrode">electrodes</a> on an MEA <a href="Transducer" title="Transducer">transduce</a> the change in <a href="Voltage" title="Voltage">voltage</a> from the environment carried by <a href="Ions" class="mw-redirect" title="Ions">ions</a> into currents carried by <a href="Electrons" class="mw-redirect" title="Electrons">electrons</a> (electronic currents). When stimulating, <a href="Electrodes" class="mw-redirect" title="Electrodes">electrodes</a> transduce electronic currents into ionic currents through the media. This triggers the <a href="Voltage-gated_ion_channel" title="Voltage-gated ion channel">voltage-gated ion channels</a> on the <a href="Cell_membrane" title="Cell membrane">membranes</a> of the excitable cells, causing the cell to <a href="Depolarization" title="Depolarization">depolarize</a> and trigger an <a href="Action_potential" title="Action potential">action potential</a> if it is a neuron or a twitch if it is a muscle cell.
</p><p>The size and shape of a recorded signal depend upon several factors: the nature of the medium in which the cell or cells are located (e.g. the medium's <a href="Electrical_conductivity" class="mw-redirect" title="Electrical conductivity">electrical conductivity</a>, <a href="Capacitance" title="Capacitance">capacitance</a>, and <a href="Homogeneous_(chemistry)" class="mw-redirect" title="Homogeneous (chemistry)">homogeneity</a>); the nature of contact between the cells and the MEA electrode (e.g. area of contact and tightness); the nature of the MEA electrode itself (e.g. its geometry, <a href="Electrical_impedance" title="Electrical impedance">impedance</a>, and noise); the <a href="Analog_signal_processing" title="Analog signal processing">analog signal processing</a> (e.g. the system's <a href="Gain_(electronics)" title="Gain (electronics)">gain</a>, <a href="Bandwidth_(signal_processing)" title="Bandwidth (signal processing)">bandwidth</a>, and behavior outside of <a href="Cutoff_frequency" title="Cutoff frequency">cutoff frequencies</a>); and the data <a href="Sampling_(signal_processing)" title="Sampling (signal processing)">sampling</a> properties (e.g. <a href="Sampling_rate" class="mw-redirect" title="Sampling rate">sampling rate</a> and <a href="Digital_signal_processing" title="Digital signal processing">digital signal processing</a>).<sup id="cite_ref-Boven_3-0" class="reference"><a href="#cite_note-Boven-3"><span class="cite-bracket">[</span>3<span class="cite-bracket">]</span></a></sup> For the recording of a single cell that partially covers a planar electrode, the voltage at the <a href="Contact_pad" title="Contact pad">contact pad</a> is approximately equal to the voltage of the overlapping region of the cell and electrode multiplied by the ratio the <a href="Surface_area" title="Surface area">surface area</a> of the overlapping region to the area of the entire electrode, or:
</p><p><span class="mwe-math-element mwe-math-element-inline"><span class="mwe-math-mathml-inline mwe-math-mathml-a11y" style="display: none;"><math xmlns="http://www.w3.org/1998/Math/MathML" alttext="{\displaystyle V_{pad}=V_{overlap}\times {\frac {A_{overlap}}{A_{electrode}}}}">
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<annotation encoding="application/x-tex">{\displaystyle V_{pad}=V_{overlap}\times {\frac {A_{overlap}}{A_{electrode}}}}</annotation>
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</math></span><img src="./acfc7554f5ae1949392d8b79c14024f16fa37425.svg" class="mwe-math-fallback-image-inline mw-invert skin-invert" aria-hidden="true" style="vertical-align: -2.338ex; width:26.264ex; height:6.176ex;" alt="{\displaystyle V_{pad}=V_{overlap}\times {\frac {A_{overlap}}{A_{electrode}}}}" loading="lazy"></span>
</p><p>assuming the area around an electrode is <a href="Insulator_(electrical)" class="mw-redirect" title="Insulator (electrical)">well-insulated</a> and has a very small capacitance associated with it.<sup id="cite_ref-Boven_3-1" class="reference"><a href="#cite_note-Boven-3"><span class="cite-bracket">[</span>3<span class="cite-bracket">]</span></a></sup> The equation above, however, relies on modeling the electrode, cells, and their surroundings as an equivalent <a href="Circuit_diagram" title="Circuit diagram">circuit diagram</a>. An alternative means of predicting cell-electrode behavior is by modeling the system using a geometry-based <a href="Finite_element_analysis" class="mw-redirect" title="Finite element analysis">finite element analysis</a> in an attempt to circumvent the limitations of oversimplifying the system in a lumped circuit element diagram.<sup id="cite_ref-Buitenweg_4-0" class="reference"><a href="#cite_note-Buitenweg-4"><span class="cite-bracket">[</span>4<span class="cite-bracket">]</span></a></sup>
</p><p>An MEA can be used to perform <a href="Electrophysiological" class="mw-redirect" title="Electrophysiological">electrophysiological</a> experiments on tissue slices or dissociated cell cultures. With acute tissue slices, the connections between the cells within the tissue slices prior to extraction and plating are more or less preserved, while the intercellular connections in dissociated cultures are destroyed prior to plating. With dissociated neuronal cultures, the neurons spontaneously form <a href="Biological_neural_network" class="mw-redirect" title="Biological neural network">networks</a>.<sup id="cite_ref-Potter2001_5-0" class="reference"><a href="#cite_note-Potter2001-5"><span class="cite-bracket">[</span>5<span class="cite-bracket">]</span></a></sup>
</p><p>It can be seen that the voltage <a href="Amplitude" title="Amplitude">amplitude</a> an electrode experiences is <a href="Inversely_related" class="mw-redirect" title="Inversely related">inversely related</a> to the distance from which a cell depolarizes.<sup id="cite_ref-PineBook_6-0" class="reference"><a href="#cite_note-PineBook-6"><span class="cite-bracket">[</span>6<span class="cite-bracket">]</span></a></sup> Thus, it may be necessary for the cells to be cultured or otherwise placed as close to the electrodes as possible. With tissue slices, a layer of electrically passive dead cells form around the site of incision due to <a href="Edema" title="Edema">edema</a>.<sup id="cite_ref-Heuschkel_7-0" class="reference"><a href="#cite_note-Heuschkel-7"><span class="cite-bracket">[</span>7<span class="cite-bracket">]</span></a></sup> A way to deal with this is by fabricating an MEA with three-dimensional electrodes fabricated by <a href="Photomask" title="Photomask">masking</a> and <a href="Etching_(microfabrication)" title="Etching (microfabrication)">chemical etching</a>. These 3-D electrodes penetrate the dead cell layer of the slice tissue, decreasing the distance between live cells and the electrodes.<sup id="cite_ref-Thiebaud_8-0" class="reference"><a href="#cite_note-Thiebaud-8"><span class="cite-bracket">[</span>8<span class="cite-bracket">]</span></a></sup> In dissociated cultures, proper adherence of the cells to the MEA substrate is important for getting robust signals.
</p>
<div class="mw-heading mw-heading2"><h2 id="History">History</h2></div>
<p>The first implantable arrays were microwire arrays developed in the 1950s.<sup id="cite_ref-Cheung_9-0" class="reference"><a href="#cite_note-Cheung-9"><span class="cite-bracket">[</span>9<span class="cite-bracket">]</span></a></sup> The first experiment involving the use of an array of planar electrodes to record from cultured cells was conducted in 1972 by C.A. Thomas, Jr. and his colleagues.<sup id="cite_ref-PineBook_6-1" class="reference"><a href="#cite_note-PineBook-6"><span class="cite-bracket">[</span>6<span class="cite-bracket">]</span></a></sup> The experimental setup used a 2 x 15 array of <a href="Gold" title="Gold">gold</a> electrodes plated with <a href="Platinum_black" title="Platinum black">platinum black</a>, each spaced 100&nbsp;μm apart from each other. <a href="Myocytes" class="mw-redirect" title="Myocytes">Myocytes</a> harvested from <a href="Embryo" title="Embryo">embryonic</a> chicks were dissociated and cultured onto the MEAs, and signals up to 1 mV high in amplitude were recorded.<sup id="cite_ref-Thomas_10-0" class="reference"><a href="#cite_note-Thomas-10"><span class="cite-bracket">[</span>10<span class="cite-bracket">]</span></a></sup> MEAs were constructed and used to explore the electrophysiology of snail <a href="Ganglia" class="mw-redirect" title="Ganglia">ganglia</a> independently by Guenter Gross and his colleagues at the Center for Network Neuroscience in 1977 without prior knowledge of Thomas and his colleagues' work.<sup id="cite_ref-PineBook_6-2" class="reference"><a href="#cite_note-PineBook-6"><span class="cite-bracket">[</span>6<span class="cite-bracket">]</span></a></sup> In 1982, Gross observed spontaneous electrophysiological activity from dissociated <a href="Spinal_cord" title="Spinal cord">spinal cord</a> neurons, and found that activity was very dependent on temperature. Below about 30˚C signal amplitudes decrease rapidly to relatively small value at <a href="Room_temperature" title="Room temperature">room temperature</a>.<sup id="cite_ref-PineBook_6-3" class="reference"><a href="#cite_note-PineBook-6"><span class="cite-bracket">[</span>6<span class="cite-bracket">]</span></a></sup>
</p><p>Before the 1990s, significant <a href="Entry_barrier" class="mw-redirect" title="Entry barrier">entry barriers</a> existed for new laboratories that sought to conduct MEA research due to the custom MEA fabrication and software they had to develop.<sup id="cite_ref-Potter2001_5-1" class="reference"><a href="#cite_note-Potter2001-5"><span class="cite-bracket">[</span>5<span class="cite-bracket">]</span></a></sup> However, with the advent of affordable computing power<sup id="cite_ref-Boven_3-2" class="reference"><a href="#cite_note-Boven-3"><span class="cite-bracket">[</span>3<span class="cite-bracket">]</span></a></sup> and commercial MEA hardware and software,<sup id="cite_ref-Potter2001_5-2" class="reference"><a href="#cite_note-Potter2001-5"><span class="cite-bracket">[</span>5<span class="cite-bracket">]</span></a></sup> many other laboratories were able to undertake research using MEAs.
</p>
<div class="mw-heading mw-heading2"><h2 id="Types">Types</h2></div>
<p>Microelectrode arrays can be divided up into subcategories based on their potential use: <i>in vitro</i> and <i>in vivo</i> arrays.
</p>
<div class="mw-heading mw-heading3"><h3 id="In_vitro_arrays"><i>In vitro</i> arrays</h3></div>

<p>The standard type of <i>in vitro</i> MEA comes in a pattern of 8 x 8 or 6 x 10 electrodes. Electrodes are typically composed of <a href="Indium_tin_oxide" title="Indium tin oxide">indium tin oxide</a>, <a href="Platinum_black" title="Platinum black">platinum black</a> or <a href="Titanium_nitride" title="Titanium nitride">titanium nitride</a> and have diameters between 10 and 30 μm. These arrays are normally used for single-cell cultures or acute brain slices.<sup id="cite_ref-Boven_3-3" class="reference"><a href="#cite_note-Boven-3"><span class="cite-bracket">[</span>3<span class="cite-bracket">]</span></a></sup>
</p><p>One challenge among <i>in vitro</i> MEAs has been imaging them with <a href="Microscopes" class="mw-redirect" title="Microscopes">microscopes</a> that use high power lenses, requiring low working distances on the order of micrometers. In order to avoid this problem, "thin"-MEAs have been created using cover slip glass. These arrays are approximately 180 μm allowing them to be used with high-power lenses.<sup id="cite_ref-Boven_3-4" class="reference"><a href="#cite_note-Boven-3"><span class="cite-bracket">[</span>3<span class="cite-bracket">]</span></a></sup><sup id="cite_ref-tenacity_11-0" class="reference"><a href="#cite_note-tenacity-11"><span class="cite-bracket">[</span>11<span class="cite-bracket">]</span></a></sup>
</p><p>Another challenge among <i>in vitro</i> MEAs has been the rigidity of the glass substrate, which does not replicate the soft, flexible nature of biological tissues, thus impacting cellular behavior and experimental outcomes.<sup id="cite_ref-12" class="reference"><a href="#cite_note-12"><span class="cite-bracket">[</span>12<span class="cite-bracket">]</span></a></sup><sup id="cite_ref-:0_13-0" class="reference"><a href="#cite_note-:0-13"><span class="cite-bracket">[</span>13<span class="cite-bracket">]</span></a></sup> To address this limitation, flexible and <a href="Stretchable_microelectrode_array" title="Stretchable microelectrode array">stretchable microelectrode arrays</a> have been developed to better simulate the mechanical properties of living tissues.<sup id="cite_ref-:0_13-1" class="reference"><a href="#cite_note-:0-13"><span class="cite-bracket">[</span>13<span class="cite-bracket">]</span></a></sup><sup id="cite_ref-14" class="reference"><a href="#cite_note-14"><span class="cite-bracket">[</span>14<span class="cite-bracket">]</span></a></sup> Manufacturers of flexible and stretchable MEAs such as BioMedical Sustainable Elastic Electronic Devices and Flexcell International Corporation are advancing MEA technologies to enhance the relevance of <i>in vitro</i> research by providing a more physiologically accurate environment for cells.<sup id="cite_ref-15" class="reference"><a href="#cite_note-15"><span class="cite-bracket">[</span>15<span class="cite-bracket">]</span></a></sup><sup id="cite_ref-16" class="reference"><a href="#cite_note-16"><span class="cite-bracket">[</span>16<span class="cite-bracket">]</span></a></sup>
</p><p>In another special design, 60 electrodes are split into 6 × 5 arrays separated by 500 μm. Electrodes within a group are separated by 30&nbsp;um with diameters of 10 μm. Arrays such as this are used to examine local responses of neurons while also studying functional connectivity of organotypic slices.<sup id="cite_ref-Boven_3-5" class="reference"><a href="#cite_note-Boven-3"><span class="cite-bracket">[</span>3<span class="cite-bracket">]</span></a></sup><sup id="cite_ref-17" class="reference"><a href="#cite_note-17"><span class="cite-bracket">[</span>17<span class="cite-bracket">]</span></a></sup>
</p><p>Spatial resolution is one of the key advantages of MEAs and allows signals sent over a long distance to be taken with higher precision when a high-density MEA is used. These arrays usually have a square grid pattern of 256 electrodes that cover an area of 2.8 by 2.8&nbsp;mm.<sup id="cite_ref-Boven_3-6" class="reference"><a href="#cite_note-Boven-3"><span class="cite-bracket">[</span>3<span class="cite-bracket">]</span></a></sup>
</p><p>Increased spatial resolution is provided by CMOS-based high-density microelectrode arrays featuring thousands of electrodes along with integrated readout and stimulation circuits on compact chips of the size of a thumbnail.<sup id="cite_ref-A1_18-0" class="reference"><a href="#cite_note-A1-18"><span class="cite-bracket">[</span>18<span class="cite-bracket">]</span></a></sup> Even the resolution of signals propagating along single axons has been demonstrated.<sup id="cite_ref-A2_19-0" class="reference"><a href="#cite_note-A2-19"><span class="cite-bracket">[</span>19<span class="cite-bracket">]</span></a></sup>
</p><p>In order to obtain quality signals electrodes and tissue must be in close contact with one another. The perforated MEA design applies negative <a href="Pressure" title="Pressure">pressure</a> to openings in the substrate so that tissue slices can be positioned on the electrodes to enhance contact and recorded signals.<sup id="cite_ref-Boven_3-7" class="reference"><a href="#cite_note-Boven-3"><span class="cite-bracket">[</span>3<span class="cite-bracket">]</span></a></sup>
</p><p>A different approach to lower the electrode impedance is by modification of the interface material, for example by using <a href="Carbon_nanotubes" class="mw-redirect" title="Carbon nanotubes">carbon nanotubes</a>,<sup id="cite_ref-20" class="reference"><a href="#cite_note-20"><span class="cite-bracket">[</span>20<span class="cite-bracket">]</span></a></sup><sup id="cite_ref-21" class="reference"><a href="#cite_note-21"><span class="cite-bracket">[</span>21<span class="cite-bracket">]</span></a></sup> or by modification of the structure of the electrodes, with for example gold nanopillars<sup id="cite_ref-22" class="reference"><a href="#cite_note-22"><span class="cite-bracket">[</span>22<span class="cite-bracket">]</span></a></sup> or nanocavities.<sup id="cite_ref-23" class="reference"><a href="#cite_note-23"><span class="cite-bracket">[</span>23<span class="cite-bracket">]</span></a></sup>
</p><p>While long-term extracellular in vitro recording of neural cells has been the main avenue of the CMOS MEA, <sup id="cite_ref-24" class="reference"><a href="#cite_note-24"><span class="cite-bracket">[</span>24<span class="cite-bracket">]</span></a></sup>, its capacity has recently been extended to high-sensitivity multi-electrode intracellular in vitro recording of neural cells <sup id="cite_ref-25" class="reference"><a href="#cite_note-25"><span class="cite-bracket">[</span>25<span class="cite-bracket">]</span></a></sup>, complementing the long-term extracellular recording.
</p>
<div class="mw-heading mw-heading3"><h3 id="In_vivo_arrays"><i>In vivo</i> arrays</h3></div>

<p>The three major categories of implantable MEAs are microwire, <a href="Silicon" title="Silicon">silicon</a>-based,<sup id="cite_ref-26" class="reference"><a href="#cite_note-26"><span class="cite-bracket">[</span>26<span class="cite-bracket">]</span></a></sup> and flexible microelectrode arrays. Microwire MEAs are largely made of stainless <a href="Steel" title="Steel">steel</a> or <a href="Tungsten" title="Tungsten">tungsten</a> and they can be used to estimate the position of individual recorded neurons by triangulation. Silicon-based microelectrode arrays include two specific models: the Michigan and Utah arrays. Michigan arrays allow a higher density of sensors for implantation as well as a higher spatial resolution than microwire MEAs. They also allow signals to be obtained along the length of the shank, rather than just at the ends of the shanks. In contrast to Michigan arrays, Utah arrays are 3-D, consisting of 100 conductive silicon needles. However, in a Utah array, signals are only received from the tips of each electrode, which limits the amount of information that can be obtained at one time. Furthermore, Utah arrays are manufactured with set dimensions and parameters while the Michigan array allows for more design freedom. Flexible arrays, made with <a href="Polyimide" title="Polyimide">polyimide</a>, <a href="Parylene" title="Parylene">parylene</a>, or <a href="Benzocyclobutene" title="Benzocyclobutene">benzocyclobutene</a>, provide an advantage over rigid microelectrode arrays because they provide a closer mechanical match, as the <a href="Young's_modulus" title="Young's modulus">Young's modulus</a> of silicon is much larger than that of brain tissue, contributing to shear-induced <a href="Inflammation" title="Inflammation">inflammation</a>.<sup id="cite_ref-Cheung_9-1" class="reference"><a href="#cite_note-Cheung-9"><span class="cite-bracket">[</span>9<span class="cite-bracket">]</span></a></sup><sup id="cite_ref-:0_13-2" class="reference"><a href="#cite_note-:0-13"><span class="cite-bracket">[</span>13<span class="cite-bracket">]</span></a></sup><sup id="cite_ref-27" class="reference"><a href="#cite_note-27"><span class="cite-bracket">[</span>27<span class="cite-bracket">]</span></a></sup>
</p>
<div class="mw-heading mw-heading2"><h2 id="Data_processing_methods">Data processing methods</h2></div>
<p>The fundamental unit of communication of neurons is, electrically, at least, the action potential. This all-or-nothing phenomenon originates at the <a href="Axon_hillock" title="Axon hillock">axon hillock</a>,<sup id="cite_ref-Angelides_28-0" class="reference"><a href="#cite_note-Angelides-28"><span class="cite-bracket">[</span>28<span class="cite-bracket">]</span></a></sup> resulting in a depolarization of the intracellular environment which propagates down the <a href="Axon" title="Axon">axon</a>. This ion flux through the cellular membrane generates a sharp change in voltage in the extracellular environment, which is what the MEA electrodes ultimately detect. Thus, voltage spike counting and sorting is often used in research to characterize network activity. Spike train analysis, can also save processing time and computing memory compared to voltage measurements. Spike timestamps are identified as times where the voltage measured by an individual electrode exceeds a threshold (often defined by standard deviations from the mean of an inactive time period). These timestamps can be further processed to identify bursts(multiple spikes in close proximity). Further analysis of these trains can reveal spike organization and temporal patterns.<sup id="cite_ref-29" class="reference"><a href="#cite_note-29"><span class="cite-bracket">[</span>29<span class="cite-bracket">]</span></a></sup>
</p>
<div class="mw-heading mw-heading2"><h2 id="Capabilities">Capabilities</h2></div>
<div class="mw-heading mw-heading3"><h3 id="Advantages">Advantages</h3></div>
<p>In general, the major strengths of <i>in vitro</i> arrays when compared to more traditional methods such as <a href="Patch_clamp" title="Patch clamp">patch clamping</a> include:<sup id="cite_ref-30" class="reference"><a href="#cite_note-30"><span class="cite-bracket">[</span>30<span class="cite-bracket">]</span></a></sup>
</p>
<ul><li>Allowing the placement of multiple electrodes at once rather than individually</li>
<li>The ability to set up controls within the same experimental setup (by using one electrode as a control and others as experimental). This is of particular interest in stimulation experiments.</li>
<li>The ability to select different recordings sites within the array</li>
<li>The ability to simultaneously receive data from multiple sites</li>
<li>Recordings from intact retinae are of great interest because of the possibility of delivering real-time optical stimulation and, for instance, the possibility of reconstructing receptive fields.</li></ul>
<p>Furthermore, <i>in vitro</i> arrays are non-invasive when compared to patch clamping because they do not require breaching of the cell membrane.
</p><p>With respect to <i>in vivo</i> arrays however, the major advantage over patch clamping is the high spatial resolution. Implantable arrays allow signals to be obtained from individual neurons enabling information such as position or <a href="Velocity" title="Velocity">velocity</a> of motor movement that can be used to control a <a href="Prosthetic" class="mw-redirect" title="Prosthetic">prosthetic</a> device. Large-scale, parallel recordings with tens of implanted electrodes are possible, at least in rodents, during animal behavior. This makes such extracellular recordings the method of choice to identify of neural circuits and to study their functions. Unambiguous identification of the recorded neuron using multi-electrode extracellular arrays, however, remains a problem to date.
</p>
<div class="mw-heading mw-heading3"><h3 id="Disadvantages">Disadvantages</h3></div>
<p><i>In vitro</i> MEAs are less suited for recording and stimulating single cells due to their low spatial resolution compared to patch clamp and dynamic clamp systems. The complexity of signals an MEA electrode could effectively transmit to other cells is limited compared to the capabilities of dynamic clamps.
</p><p>There are also several biological responses to implantation of a microelectrode array, particularly in regards to chronic implantation.<sup id="cite_ref-31" class="reference"><a href="#cite_note-31"><span class="cite-bracket">[</span>31<span class="cite-bracket">]</span></a></sup> Most notable among these effects are neuronal cell loss, <a href="Glial_scarring" class="mw-redirect" title="Glial scarring">glial scarring</a>, and a drop in the number of functioning electrodes.<sup id="cite_ref-32" class="reference"><a href="#cite_note-32"><span class="cite-bracket">[</span>32<span class="cite-bracket">]</span></a></sup> The tissue response to implantation is dependent among many factors including size of the MEA shanks, distance between the shanks, MEA material composition, and time period of insertion. The tissue response is typically divided into short term and long term response. The short term response occurs within hours of implantation and begins with an increased population of <a href="Astrocytes" class="mw-redirect" title="Astrocytes">astrocytes</a> and <a href="Glial_cells" class="mw-redirect" title="Glial cells">glial cells</a> surrounding the device. The recruited <a href="Microglia" title="Microglia">microglia</a> then initiate inflammation and a process of <a href="Phagocytosis" title="Phagocytosis">phagocytosis</a> of the foreign material begins. Over time, the astrocytes and microglia recruited to the device begin to accumulate, forming a sheath surrounding the array that extends tens of micrometres around the device. This not only increases the space between electrode probes, but also insulates the electrodes and increases impedance measurements. Problems with chronic implantation of arrays have been a driving force in the research of these devices. One novel study examined the <a href="Neurodegenerative" class="mw-redirect" title="Neurodegenerative">neurodegenerative</a> effects of inflammation caused by chronic implantation.<sup id="cite_ref-33" class="reference"><a href="#cite_note-33"><span class="cite-bracket">[</span>33<span class="cite-bracket">]</span></a></sup> <a href="Immunohistochemical" class="mw-redirect" title="Immunohistochemical">Immunohistochemical</a> markers showed a surprising presence of hyperphosphorylated tau, an indicator of <a href="Alzheimer's_disease" title="Alzheimer's disease">Alzheimer's disease</a>, near the electrode recording site. The phagocytosis of electrode material also brings into question the issue of a biocompatibility response, which research suggests has been minor and becomes almost nonexistent after 12 weeks <i>in vivo</i>. Research into minimizing the negative effects of device insertion includes surface coating of the devices with proteins that encourage neuron attachment, such as <a href="Laminin" title="Laminin">laminin</a>, or drug <a href="Elution" title="Elution">eluting</a> substances.<sup id="cite_ref-34" class="reference"><a href="#cite_note-34"><span class="cite-bracket">[</span>34<span class="cite-bracket">]</span></a></sup><sup id="cite_ref-:0_13-3" class="reference"><a href="#cite_note-:0-13"><span class="cite-bracket">[</span>13<span class="cite-bracket">]</span></a></sup>
</p>
<div class="mw-heading mw-heading2"><h2 id="Applications">Applications</h2></div>
<div class="mw-heading mw-heading3"><h3 id="In_vitro"><i>In vitro</i></h3></div>
<p>The nature of dissociated <a href="Neuronal_network" class="mw-redirect" title="Neuronal network">neuronal networks</a> does not seem to change or diminish the character of its <a href="Pharmacological" class="mw-redirect" title="Pharmacological">pharmacological</a> response when compared to <i>in vivo</i> models, suggesting that MEAs can be used to study pharmacological effects on dissociated neuronal cultures in a more simple, controlled environment.<sup id="cite_ref-Gopal_35-0" class="reference"><a href="#cite_note-Gopal-35"><span class="cite-bracket">[</span>35<span class="cite-bracket">]</span></a></sup> A number of pharmacological studies using MEAs on dissociated neuronal networks, e.g. studies with <a href="Ethanol" title="Ethanol">ethanol</a>.<sup id="cite_ref-Xia_36-0" class="reference"><a href="#cite_note-Xia-36"><span class="cite-bracket">[</span>36<span class="cite-bracket">]</span></a></sup> Interlaboratory validation has been conducted using MEAs.<sup id="cite_ref-37" class="reference"><a href="#cite_note-37"><span class="cite-bracket">[</span>37<span class="cite-bracket">]</span></a></sup>
</p><p>In addition, a substantial body of work on various biophysical aspects of network function was carried out by reducing phenomena usually studied at the behavioral level to the dissociated cortical network level. For example, the capacity of such networks to extract spatial<sup id="cite_ref-Order_38-0" class="reference"><a href="#cite_note-Order-38"><span class="cite-bracket">[</span>38<span class="cite-bracket">]</span></a></sup> and temporal<sup id="cite_ref-39" class="reference"><a href="#cite_note-39"><span class="cite-bracket">[</span>39<span class="cite-bracket">]</span></a></sup> features of various input signals, dynamics of synchronization,<sup id="cite_ref-40" class="reference"><a href="#cite_note-40"><span class="cite-bracket">[</span>40<span class="cite-bracket">]</span></a></sup> sensitivity to <a href="Neuromodulation_(biology)" class="mw-redirect" title="Neuromodulation (biology)">neuromodulation</a><sup id="cite_ref-41" class="reference"><a href="#cite_note-41"><span class="cite-bracket">[</span>41<span class="cite-bracket">]</span></a></sup><sup id="cite_ref-42" class="reference"><a href="#cite_note-42"><span class="cite-bracket">[</span>42<span class="cite-bracket">]</span></a></sup><sup id="cite_ref-43" class="reference"><a href="#cite_note-43"><span class="cite-bracket">[</span>43<span class="cite-bracket">]</span></a></sup> and kinetics of learning using closed loop regimes.<sup id="cite_ref-44" class="reference"><a href="#cite_note-44"><span class="cite-bracket">[</span>44<span class="cite-bracket">]</span></a></sup><sup id="cite_ref-45" class="reference"><a href="#cite_note-45"><span class="cite-bracket">[</span>45<span class="cite-bracket">]</span></a></sup> Finally, combining MEA technology with <a href="Confocal_microscopy" title="Confocal microscopy">confocal microscopy</a> allows for studying relationships between network activity and synaptic remodeling.<sup id="cite_ref-tenacity_11-1" class="reference"><a href="#cite_note-tenacity-11"><span class="cite-bracket">[</span>11<span class="cite-bracket">]</span></a></sup>
</p><p>MEAs have been used to interface neuronal networks with non-biological systems as a controller. For example, a neural-computer interface can be created using MEAs. Dissociated rat <a href="Cerebral_cortex" title="Cerebral cortex">cortical</a> neurons were integrated into a closed stimulus-response feedback loop to control an animat in a virtual environment.<sup id="cite_ref-Animat_46-0" class="reference"><a href="#cite_note-Animat-46"><span class="cite-bracket">[</span>46<span class="cite-bracket">]</span></a></sup> A <a href="Feedback" title="Feedback">closed-loop</a> stimulus-response system has also been constructed using an MEA by Potter, Mandhavan, and DeMarse,<sup id="cite_ref-potterrobot_47-0" class="reference"><a href="#cite_note-potterrobot-47"><span class="cite-bracket">[</span>47<span class="cite-bracket">]</span></a></sup> and by Mark Hammond, <a href="Kevin_Warwick" title="Kevin Warwick">Kevin Warwick</a>, and Ben Whalley in the <a href="University_of_Reading" title="University of Reading">University of Reading</a>. About 300,000 dissociated rat neurons were plated on an MEA, which was connected to motors and <a href="Ultrasound" title="Ultrasound">ultrasound</a> sensors on a robot, and was conditioned to avoid obstacles when sensed.<sup id="cite_ref-Marks_48-0" class="reference"><a href="#cite_note-Marks-48"><span class="cite-bracket">[</span>48<span class="cite-bracket">]</span></a></sup> Along these lines, Shimon Marom and colleagues in the <a href="Technion_%E2%80%93_Israel_Institute_of_Technology" title="Technion – Israel Institute of Technology">Technion</a> hooked dissociated neuronal networks growing on MEAs to a <a href="Lego_Mindstorms" title="Lego Mindstorms">Lego Mindstorms</a> robot; the visual field of the robot was classified by the network, and commands were delivered to the robot wheels such that it completely avoids bumping into obstacles.<sup id="cite_ref-Order_38-1" class="reference"><a href="#cite_note-Order-38"><span class="cite-bracket">[</span>38<span class="cite-bracket">]</span></a></sup> This <a href="Braitenberg_vehicles" class="mw-redirect" title="Braitenberg vehicles">"Braitenberg vehicle"</a> was used to demonstrate the <a href="Underdetermination" title="Underdetermination">indeterminacy</a> of reverse neuro-engineering showing that even in a simple setup with practically unlimited access to every piece of relevant information,<sup id="cite_ref-49" class="reference"><a href="#cite_note-49"><span class="cite-bracket">[</span>49<span class="cite-bracket">]</span></a></sup> it was impossible to deduce with certainty the specific <a href="Neural_coding" title="Neural coding">neural coding</a> scheme that was used to drive the robots behavior.
</p><p>MEAs have been used to observe network firing in <a href="Hippocampal" class="mw-redirect" title="Hippocampal">hippocampal</a> slices.<sup id="cite_ref-Colgin_50-0" class="reference"><a href="#cite_note-Colgin-50"><span class="cite-bracket">[</span>50<span class="cite-bracket">]</span></a></sup>
</p>
<div class="mw-heading mw-heading3"><h3 id="In_vivo"><i>In vivo</i></h3></div>
<p>There are several implantable interfaces that are currently available for consumer use including <a href="Deep_brain_stimulation" title="Deep brain stimulation">deep brain stimulators</a>, <a href="Cochlear_implants" class="mw-redirect" title="Cochlear implants">cochlear implants</a>, and <a href="Artificial_pacemaker" class="mw-redirect" title="Artificial pacemaker">cardiac pacemakers</a>. Deep brain stimulation (DBS) has been effective at treating movement disorders such as <a href="Parkinson's_disease" title="Parkinson's disease">Parkinson's disease</a>,<sup id="cite_ref-51" class="reference"><a href="#cite_note-51"><span class="cite-bracket">[</span>51<span class="cite-bracket">]</span></a></sup> and cochlear implants have helped many to improve their hearing by assisting stimulation of the <a href="Auditory_nerve" class="mw-redirect" title="Auditory nerve">auditory nerve</a>. Because of their remarkable potential, MEAs are a prominent area of neuroscience research. Research suggests that MEAs may provide insight into processes such as memory formation and perception and may also hold therapeutic value for conditions such as <a href="Epilepsy" title="Epilepsy">epilepsy</a>, <a href="Major_depressive_disorder" title="Major depressive disorder">depression</a>, and <a href="Obsessive-compulsive_disorder" class="mw-redirect" title="Obsessive-compulsive disorder">obsessive-compulsive disorder</a> . Clinical trials using interface devices for restoring motor control after spinal cord injury or as treatment for <a href="Amyotrophic_lateral_sclerosis" class="mw-redirect" title="Amyotrophic lateral sclerosis">ALS</a> have been initiated in a project entitled BrainGate (see video demo: <a rel="nofollow" class="external text" href="http://www.cyberkineticsinc.com/video.htm">BrainGate</a>). MEAs provide the high resolution necessary to record time varying signals, giving them the ability to be used to both control and obtain feedback from prosthetic devices, as was shown by <a href="Kevin_Warwick" title="Kevin Warwick">Kevin Warwick</a>, <a href="Mark_Gasson" title="Mark Gasson">Mark Gasson</a> and <a href="Peter_Kyberd" title="Peter Kyberd">Peter Kyberd</a>.<sup id="cite_ref-52" class="reference"><a href="#cite_note-52"><span class="cite-bracket">[</span>52<span class="cite-bracket">]</span></a></sup><sup id="cite_ref-53" class="reference"><a href="#cite_note-53"><span class="cite-bracket">[</span>53<span class="cite-bracket">]</span></a></sup> Research suggests that MEA use may be able to assist in the restoration of vision by stimulating the <a href="Optic_nerve" title="Optic nerve">optic pathway</a>.<sup id="cite_ref-Cheung_9-2" class="reference"><a href="#cite_note-Cheung-9"><span class="cite-bracket">[</span>9<span class="cite-bracket">]</span></a></sup>
</p>
<div class="mw-heading mw-heading2"><h2 id="MEA_user_meetings">MEA user meetings</h2></div>
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<p>A biannual scientific user meeting is held in <a href="Reutlingen" title="Reutlingen">Reutlingen</a>, organized by the Natural and Medical Sciences Institute (NMI) at the <a href="University_of_T%C3%BCbingen" title="University of Tübingen">University of Tübingen</a>. The meetings offer a comprehensive overview of all aspects related to new developments and current applications of Microelectrode Arrays in basic and applied neuroscience as well as in industrial drug discovery, safety pharmacology and neurotechnology. The biannual conference has developed into an international venue for scientists developing and using MEAs from both industry and academia, and is recognized as an information-packed scientific forum of high quality. The meeting contributions are available as open access proceeding books.
</p>
<div class="mw-heading mw-heading2"><h2 id="Use_in_art">Use in art</h2></div>
<p>In addition to being used for scientific purposes, MEAs have been used in <a href="Contemporary_art" title="Contemporary art">contemporary art</a> to investigate philosophical questions about the relationship between technology and biology. Traditionally within Western thought, biology and technology have been separated into two distinct categories: <i><a href="https://en.wiktionary.org/wiki/%CE%B2%CE%AF%CE%BF%CF%82#Ancient_Greek" class="extiw external" title="wikt:βίος">bios</a></i> and <i><a href="Techne" title="Techne">technê.</a></i><sup id="cite_ref-54" class="reference"><a href="#cite_note-54"><span class="cite-bracket">[</span>54<span class="cite-bracket">]</span></a></sup> In 2002, <i>MEART: The Semi-living Artist</i> was created as a collaborative art and science project between <a href="Symbiotica" class="mw-redirect" title="Symbiotica">SymbioticA</a> at the <a href="University_of_Western_Australia" title="University of Western Australia">University of Western Australia</a> in <a href="Perth" title="Perth">Perth</a>, and the Potter Lab at the <a href="Georgia_Institute_of_Technology" class="mw-redirect" title="Georgia Institute of Technology">Georgia Institute of Technology</a> in <a href="Atlanta" title="Atlanta">Atlanta</a>, to question the relationship between biology and technology.<sup id="cite_ref-55" class="reference"><a href="#cite_note-55"><span class="cite-bracket">[</span>55<span class="cite-bracket">]</span></a></sup><sup id="cite_ref-56" class="reference"><a href="#cite_note-56"><span class="cite-bracket">[</span>56<span class="cite-bracket">]</span></a></sup><sup id="cite_ref-Group_2002_pp.60-68_57-0" class="reference"><a href="#cite_note-Group_2002_pp.60-68-57"><span class="cite-bracket">[</span>57<span class="cite-bracket">]</span></a></sup><sup id="cite_ref-58" class="reference"><a href="#cite_note-58"><span class="cite-bracket">[</span>58<span class="cite-bracket">]</span></a></sup> <i>MEART</i> consisted of rat cortical neurons grown <i>in vitro</i> on an MEA in Atlanta, a pneumatic robot arm capable of drawing with pens on paper in Perth, and software to govern communications between the two. Signals from the neurons were relayed in a closed-loop between Perth and Atlanta as the MEA stimulated the pneumatic arm. <i>MEART</i> was first exhibited to the public in the exhibition <i>Biofeel</i> at the <a href="Perth_Institute_of_Contemporary_Arts" title="Perth Institute of Contemporary Arts">Perth Institute of Contemporary Arts</a> in 2002.<sup id="cite_ref-Group_2002_pp.60-68_57-1" class="reference"><a href="#cite_note-Group_2002_pp.60-68-57"><span class="cite-bracket">[</span>57<span class="cite-bracket">]</span></a></sup><sup id="cite_ref-59" class="reference"><a href="#cite_note-59"><span class="cite-bracket">[</span>59<span class="cite-bracket">]</span></a></sup>
</p>
<div class="mw-heading mw-heading2"><h2 id="See_also">See also</h2></div>
<ul><li><a href="Animat" title="Animat">Animat</a></li>
<li><a href="Artificial_cardiac_pacemaker" class="mw-redirect" title="Artificial cardiac pacemaker">Artificial cardiac pacemaker</a></li>
<li><a href="Deep_brain_stimulation" title="Deep brain stimulation">Deep brain stimulation</a></li>
<li><a href="Patch_clamp" title="Patch clamp">Patch clamp</a></li>
<li><a href="Bioelectronics" title="Bioelectronics">Bioelectronics</a></li></ul>
<div class="mw-heading mw-heading2"><h2 id="References">References</h2></div>
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<li id="cite_note-1"><span class="mw-cite-backlink"><b><a href="#cite_ref-1">^</a></b></span> <span class="reference-text">The common misnomer multielectrode array replaces the prefix micro- with multi-, whose meaning is redundant with array. Micro- is important, as a small electrode is necessary to resolve the activity of single cells. Note that a microelectrode array is used for multichannel recordings.</span>
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<li id="cite_note-2"><span class="mw-cite-backlink"><b><a href="#cite_ref-2">^</a></b></span> <span class="reference-text"><style data-mw-deduplicate="TemplateStyles:r1238218222">
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</style><cite class="citation web cs1"><a rel="nofollow" class="external text" href="https://www.bmseed.com/multielectrode-array">"What is a Multielectrode Array (MEA)?"</a>.</cite></span>
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<li id="cite_note-Boven-3"><span class="mw-cite-backlink">^ <a href="#cite_ref-Boven_3-0"><sup><i><b>a</b></i></sup></a> <a href="#cite_ref-Boven_3-1"><sup><i><b>b</b></i></sup></a> <a href="#cite_ref-Boven_3-2"><sup><i><b>c</b></i></sup></a> <a href="#cite_ref-Boven_3-3"><sup><i><b>d</b></i></sup></a> <a href="#cite_ref-Boven_3-4"><sup><i><b>e</b></i></sup></a> <a href="#cite_ref-Boven_3-5"><sup><i><b>f</b></i></sup></a> <a href="#cite_ref-Boven_3-6"><sup><i><b>g</b></i></sup></a> <a href="#cite_ref-Boven_3-7"><sup><i><b>h</b></i></sup></a></span> <span class="reference-text"><cite id="CITEREFBovenFejtlMöllerNisch2006" class="citation book cs1">Boven, K.-H.; Fejtl, M.; Möller, A.; Nisch, W.; Stett, A. (2006). "On Micro-Electrode Array Revival". In Baudry, M.; Taketani, M. (eds.). <i>Advances in Network Electrophysiology Using Multi-Electrode Arrays</i>. New York: Springer. pp.&nbsp;<span class="nowrap">24–</span>37. <a href="ISBN_(identifier)" class="mw-redirect" title="ISBN (identifier)">ISBN</a>&nbsp;<bdi>0-387-25857-4</bdi>.</cite></span>
</li>
<li id="cite_note-Buitenweg-4"><span class="mw-cite-backlink"><b><a href="#cite_ref-Buitenweg_4-0">^</a></b></span> <span class="reference-text"><cite id="CITEREFBuitenwegRuttenMarani2003" class="citation journal cs1">Buitenweg, J. R.; Rutten, W. L.; Marani, E. (2003). <a rel="nofollow" class="external text" href="https://research.utwente.nl/en/publications/geometry-based-finite-element-modeling-of-the-electrical-contact-between-a-cultured-neuron-and-a-microelectrode(3fcb8a54-484f-46a0-aecc-07b37d485d42).html">"Geometry-based finite element modeling of the electrical contact between a cultured neuron and a microelectrode"</a>. <i>IEEE Trans Biomed Eng</i>. <b>50</b> (4): <span class="nowrap">501–</span>509. <a href="Bibcode_(identifier)" class="mw-redirect" title="Bibcode (identifier)">Bibcode</a>:<a rel="nofollow" class="external text" href="https://ui.adsabs.harvard.edu/abs/2003ITBE...50..501B">2003ITBE...50..501B</a>. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<a rel="nofollow" class="external text" href="https://doi.org/10.1109%2FTBME.2003.809486">10.1109/TBME.2003.809486</a>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/12723062">12723062</a>. <a href="S2CID_(identifier)" class="mw-redirect" title="S2CID (identifier)">S2CID</a>&nbsp;<a rel="nofollow" class="external text" href="https://api.semanticscholar.org/CorpusID:15578217">15578217</a>.</cite></span>
</li>
<li id="cite_note-Potter2001-5"><span class="mw-cite-backlink">^ <a href="#cite_ref-Potter2001_5-0"><sup><i><b>a</b></i></sup></a> <a href="#cite_ref-Potter2001_5-1"><sup><i><b>b</b></i></sup></a> <a href="#cite_ref-Potter2001_5-2"><sup><i><b>c</b></i></sup></a></span> <span class="reference-text"><cite id="CITEREFPotter2001" class="citation book cs1">Potter, S. M. (2001). "Distributed processing in cultured neuronal networks". <i>Prog Brain Res</i>. Progress in Brain Research. Vol.&nbsp;130. pp.&nbsp;<span class="nowrap">49–</span>62. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<a rel="nofollow" class="external text" href="https://doi.org/10.1016%2FS0079-6123%2801%2930005-5">10.1016/S0079-6123(01)30005-5</a>. <a href="ISBN_(identifier)" class="mw-redirect" title="ISBN (identifier)">ISBN</a>&nbsp;<bdi>978-0-444-50110-3</bdi>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/11480288">11480288</a>.</cite></span>
</li>
<li id="cite_note-PineBook-6"><span class="mw-cite-backlink">^ <a href="#cite_ref-PineBook_6-0"><sup><i><b>a</b></i></sup></a> <a href="#cite_ref-PineBook_6-1"><sup><i><b>b</b></i></sup></a> <a href="#cite_ref-PineBook_6-2"><sup><i><b>c</b></i></sup></a> <a href="#cite_ref-PineBook_6-3"><sup><i><b>d</b></i></sup></a></span> <span class="reference-text"><cite id="CITEREFPine2006" class="citation book cs1">Pine, J. (2006). "A History of MEA Development". In Baudry, M.; Taketani, M. (eds.). <i>Advances in Network Electrophysiology Using Multi-Electrode Arrays</i>. New York: Springer. pp.&nbsp;<span class="nowrap">3–</span>23. <a href="ISBN_(identifier)" class="mw-redirect" title="ISBN (identifier)">ISBN</a>&nbsp;<bdi>0-387-25857-4</bdi>.</cite></span>
</li>
<li id="cite_note-Heuschkel-7"><span class="mw-cite-backlink"><b><a href="#cite_ref-Heuschkel_7-0">^</a></b></span> <span class="reference-text"><cite id="CITEREFHeuschkelWirthSteidlBuisson2006" class="citation book cs1">Heuschkel, M. O.; Wirth, C.; Steidl, E. M.; Buisson, B. (2006). "A History of MEA Development". In Baudry, M.; Taketani, M. (eds.). <i>Advances in Network Electrophysiology Using Multi-Electrode Arrays</i>. New York: Springer. pp.&nbsp;<span class="nowrap">69–</span>111. <a href="ISBN_(identifier)" class="mw-redirect" title="ISBN (identifier)">ISBN</a>&nbsp;<bdi>0-387-25857-4</bdi>.</cite></span>
</li>
<li id="cite_note-Thiebaud-8"><span class="mw-cite-backlink"><b><a href="#cite_ref-Thiebaud_8-0">^</a></b></span> <span class="reference-text"><cite id="CITEREFThiebauddeRooijKoudelka-HepStoppini1997" class="citation journal cs1">Thiebaud, P.; deRooij, N. F.; Koudelka-Hep, M.; Stoppini, L. (1997). "Microelectrode arrays for electrophysiological monitoring of hippocampal organotypic slice cultures". <i>IEEE Trans Biomed Eng</i>. <b>44</b> (11): <span class="nowrap">1159–</span>63. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<a rel="nofollow" class="external text" href="https://doi.org/10.1109%2F10.641344">10.1109/10.641344</a>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/9353996">9353996</a>. <a href="S2CID_(identifier)" class="mw-redirect" title="S2CID (identifier)">S2CID</a>&nbsp;<a rel="nofollow" class="external text" href="https://api.semanticscholar.org/CorpusID:22179940">22179940</a>.</cite></span>
</li>
<li id="cite_note-Cheung-9"><span class="mw-cite-backlink">^ <a href="#cite_ref-Cheung_9-0"><sup><i><b>a</b></i></sup></a> <a href="#cite_ref-Cheung_9-1"><sup><i><b>b</b></i></sup></a> <a href="#cite_ref-Cheung_9-2"><sup><i><b>c</b></i></sup></a></span> <span class="reference-text"><cite id="CITEREFCheung2007" class="citation journal cs1">Cheung, K. C. (2007). "Implantable microscale neural interfaces". <i>Biomedical Microdevices</i>. <b>9</b> (6): <span class="nowrap">923–</span>38. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<a rel="nofollow" class="external text" href="https://doi.org/10.1007%2Fs10544-006-9045-z">10.1007/s10544-006-9045-z</a>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/17252207">17252207</a>. <a href="S2CID_(identifier)" class="mw-redirect" title="S2CID (identifier)">S2CID</a>&nbsp;<a rel="nofollow" class="external text" href="https://api.semanticscholar.org/CorpusID:37347927">37347927</a>.</cite></span>
</li>
<li id="cite_note-Thomas-10"><span class="mw-cite-backlink"><b><a href="#cite_ref-Thomas_10-0">^</a></b></span> <span class="reference-text"><cite id="CITEREFThomasSpringerLoebBerwald-Netter1972" class="citation journal cs1">Thomas, C. A.; Springer, P. A.; Loeb, G. E.; Berwald-Netter, Y.; Okun, L. M. (1972). "A miniature microelectrode array to monitor the bioelectric activity of cultured cells". <i>Exp. Cell Res</i>. <b>74</b> (1): <span class="nowrap">61–</span>66. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<a rel="nofollow" class="external text" href="https://doi.org/10.1016%2F0014-4827%2872%2990481-8">10.1016/0014-4827(72)90481-8</a>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/4672477">4672477</a>.</cite></span>
</li>
<li id="cite_note-tenacity-11"><span class="mw-cite-backlink">^ <a href="#cite_ref-tenacity_11-0"><sup><i><b>a</b></i></sup></a> <a href="#cite_ref-tenacity_11-1"><sup><i><b>b</b></i></sup></a></span> <span class="reference-text"><cite id="CITEREFMinerbiKahanaGoldfeldKaufman2009" class="citation journal cs1">Minerbi, A.; Kahana, R.; Goldfeld, L.; Kaufman, M.; Marom, S.; Ziv, N. E. (2009). <a rel="nofollow" class="external text" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2693930">"Long-term relationships between synaptic tenacity, synaptic remodeling, and network activity"</a>. <i>PLOS Biol</i>. <b>7</b> (6): e1000136. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<span class="id-lock-free" title="Freely accessible"><a rel="nofollow" class="external text" href="https://doi.org/10.1371%2Fjournal.pbio.1000136">10.1371/journal.pbio.1000136</a></span>. <a href="PMC_(identifier)" class="mw-redirect" title="PMC (identifier)">PMC</a>&nbsp;<span class="id-lock-free" title="Freely accessible"><a rel="nofollow" class="external text" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2693930">2693930</a></span>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/19554080">19554080</a>.</cite></span>
</li>
<li id="cite_note-12"><span class="mw-cite-backlink"><b><a href="#cite_ref-12">^</a></b></span> <span class="reference-text"><cite id="CITEREFLacourBenmerahTarteFitzGerald2010" class="citation journal cs1">Lacour, Stéphanie P.; Benmerah, Samia; Tarte, Edward; FitzGerald, James; Serra, Jordi; McMahon, Stephen; Fawcett, James; Graudejus, Oliver; Yu, Zhe; Morrison, Barclay (2010-10-01). <a rel="nofollow" class="external text" href="https://link.springer.com/article/10.1007/s11517-010-0644-8">"Flexible and stretchable micro-electrodes for in vitro and in vivo neural interfaces"</a>. <i>Medical &amp; Biological Engineering &amp; Computing</i>. <b>48</b> (10): <span class="nowrap">945–</span>954. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<a rel="nofollow" class="external text" href="https://doi.org/10.1007%2Fs11517-010-0644-8">10.1007/s11517-010-0644-8</a>. <a href="ISSN_(identifier)" class="mw-redirect" title="ISSN (identifier)">ISSN</a>&nbsp;<a rel="nofollow" class="external text" href="https://search.worldcat.org/issn/1741-0444">1741-0444</a>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/20535574">20535574</a>.</cite></span>
</li>
<li id="cite_note-:0-13"><span class="mw-cite-backlink">^ <a href="#cite_ref-:0_13-0"><sup><i><b>a</b></i></sup></a> <a href="#cite_ref-:0_13-1"><sup><i><b>b</b></i></sup></a> <a href="#cite_ref-:0_13-2"><sup><i><b>c</b></i></sup></a> <a href="#cite_ref-:0_13-3"><sup><i><b>d</b></i></sup></a></span> <span class="reference-text"><cite id="CITEREFBoufidisGargAngelopoulosCullen2025" class="citation journal cs1">Boufidis, Dimitris; Garg, Raghav; Angelopoulos, Eugenia; Cullen, D. Kacy; Vitale, Flavia (2025-02-21). <a rel="nofollow" class="external text" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC11845577">"Bio-inspired electronics: Soft, biohybrid, and "living" neural interfaces"</a>. <i>Nature Communications</i>. <b>16</b> (1): 1861. <a href="Bibcode_(identifier)" class="mw-redirect" title="Bibcode (identifier)">Bibcode</a>:<a rel="nofollow" class="external text" href="https://ui.adsabs.harvard.edu/abs/2025NatCo..16.1861B">2025NatCo..16.1861B</a>. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<a rel="nofollow" class="external text" href="https://doi.org/10.1038%2Fs41467-025-57016-0">10.1038/s41467-025-57016-0</a>. <a href="ISSN_(identifier)" class="mw-redirect" title="ISSN (identifier)">ISSN</a>&nbsp;<a rel="nofollow" class="external text" href="https://search.worldcat.org/issn/2041-1723">2041-1723</a>. <a href="PMC_(identifier)" class="mw-redirect" title="PMC (identifier)">PMC</a>&nbsp;<span class="id-lock-free" title="Freely accessible"><a rel="nofollow" class="external text" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC11845577">11845577</a></span>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/39984447">39984447</a>.</cite></span>
</li>
<li id="cite_note-14"><span class="mw-cite-backlink"><b><a href="#cite_ref-14">^</a></b></span> <span class="reference-text"><cite id="CITEREFGraudejusMorrisonGoletianiYu2012" class="citation journal cs1">Graudejus, Oliver; Morrison, Barclay; Goletiani, Cezar; Yu, Zhe; Wagner, Sigurd (2012-02-08). <a rel="nofollow" class="external text" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3788117">"Encapsulating Elastically Stretchable Neural Interfaces: Yield, Resolution, and Recording/Stimulation of Neural Activity"</a>. <i>Advanced Functional Materials</i>. <b>22</b> (3): <span class="nowrap">640–</span>651. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<a rel="nofollow" class="external text" href="https://doi.org/10.1002%2Fadfm.201102290">10.1002/adfm.201102290</a>. <a href="ISSN_(identifier)" class="mw-redirect" title="ISSN (identifier)">ISSN</a>&nbsp;<a rel="nofollow" class="external text" href="https://search.worldcat.org/issn/1616-301X">1616-301X</a>. <a href="PMC_(identifier)" class="mw-redirect" title="PMC (identifier)">PMC</a>&nbsp;<span class="id-lock-free" title="Freely accessible"><a rel="nofollow" class="external text" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3788117">3788117</a></span>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/24093006">24093006</a>.</cite></span>
</li>
<li id="cite_note-15"><span class="mw-cite-backlink"><b><a href="#cite_ref-15">^</a></b></span> <span class="reference-text"><cite class="citation web cs1"><a rel="nofollow" class="external text" href="https://www.bmseed.com/stretchable-meas-for-in-vitro-research">"Advance in vitro research with BMSEED's stretchable MEAs. ✓ adaptable to cell movement ✓ high-fidelity recordings ✓ innovative design for flexibility ➔ Redefine your research potential!"</a>. <i>Stretchable microelectrode arrays for in vitro biomedical research</i><span class="reference-accessdate">. Retrieved <span class="nowrap">2024-11-12</span></span>.</cite></span>
</li>
<li id="cite_note-16"><span class="mw-cite-backlink"><b><a href="#cite_ref-16">^</a></b></span> <span class="reference-text"><cite class="citation web cs1"><a rel="nofollow" class="external text" href="https://www.flexcellint.com/product-systems/tension">"Tension Systems | Flexcell® International Corporation"</a>. <i>www.flexcellint.com</i><span class="reference-accessdate">. Retrieved <span class="nowrap">2024-11-12</span></span>.</cite></span>
</li>
<li id="cite_note-17"><span class="mw-cite-backlink"><b><a href="#cite_ref-17">^</a></b></span> <span class="reference-text"><cite id="CITEREFSegevBerry_II2003" class="citation journal cs1">Segev, R.; Berry II, M. J. (2003). "Recording from all of the ganglion cells in the retina". <i>Soc Neurosci Abstr</i>. <b>264</b>: 11.</cite></span>
</li>
<li id="cite_note-A1-18"><span class="mw-cite-backlink"><b><a href="#cite_ref-A1_18-0">^</a></b></span> <span class="reference-text"><cite id="CITEREFHierlemannFreyHafizovicHeer2011" class="citation journal cs1">Hierlemann, A.; Frey, U.; Hafizovic, S.; Heer, F. (2011). "Growing Cells atop Microelectronic Chips: Interfacing Electrogenic Cells in Vitro with CMOS-based Microelectrode Arrays". <i>Proceedings of the IEEE</i>. <b>99</b> (2): <span class="nowrap">252–</span>284. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<a rel="nofollow" class="external text" href="https://doi.org/10.1109%2FJPROC.2010.2066532">10.1109/JPROC.2010.2066532</a>. <a href="S2CID_(identifier)" class="mw-redirect" title="S2CID (identifier)">S2CID</a>&nbsp;<a rel="nofollow" class="external text" href="https://api.semanticscholar.org/CorpusID:2578216">2578216</a>.</cite></span>
</li>
<li id="cite_note-A2-19"><span class="mw-cite-backlink"><b><a href="#cite_ref-A2_19-0">^</a></b></span> <span class="reference-text"><cite id="CITEREFBakkumFreyRadivojevicRussell2013" class="citation journal cs1">Bakkum, D. J.; Frey, U.; Radivojevic, M.; Russell, T. L.; Müller, J.; Fiscella, M.; Takahashi, H.; Hierlemann, A. (2013). <a rel="nofollow" class="external text" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5419423">"Tracking axonal action potential propagation on a high-density microelectrode array across hundreds of sites"</a>. <i>Nature Communications</i>. <b>4</b> 2181. <a href="Bibcode_(identifier)" class="mw-redirect" title="Bibcode (identifier)">Bibcode</a>:<a rel="nofollow" class="external text" href="https://ui.adsabs.harvard.edu/abs/2013NatCo...4.2181B">2013NatCo...4.2181B</a>. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<span class="id-lock-free" title="Freely accessible"><a rel="nofollow" class="external text" href="https://doi.org/10.1038%2Fncomms3181">10.1038/ncomms3181</a></span>. <a href="PMC_(identifier)" class="mw-redirect" title="PMC (identifier)">PMC</a>&nbsp;<span class="id-lock-free" title="Freely accessible"><a rel="nofollow" class="external text" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5419423">5419423</a></span>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/23867868">23867868</a>.</cite></span>
</li>
<li id="cite_note-20"><span class="mw-cite-backlink"><b><a href="#cite_ref-20">^</a></b></span> <span class="reference-text"><cite id="CITEREFYuMcKnightEricsonMelechko2007" class="citation journal cs1">Yu, Z.; et&nbsp;al. (2007). "Vertically Aligned Carbon Nanofiber Arrays Record Electrophysiological Signals from Hippocampal Slices". <i>Nano Lett</i>. <b>7</b> (8): <span class="nowrap">2188–</span>95. <a href="Bibcode_(identifier)" class="mw-redirect" title="Bibcode (identifier)">Bibcode</a>:<a rel="nofollow" class="external text" href="https://ui.adsabs.harvard.edu/abs/2007NanoL...7.2188Y">2007NanoL...7.2188Y</a>. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<a rel="nofollow" class="external text" href="https://doi.org/10.1021%2Fnl070291a">10.1021/nl070291a</a>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/17604402">17604402</a>.</cite></span>
</li>
<li id="cite_note-21"><span class="mw-cite-backlink"><b><a href="#cite_ref-21">^</a></b></span> <span class="reference-text"><cite id="CITEREFGabayBen-DavidKalifaSorkin2007" class="citation journal cs1">Gabay, T.; et&nbsp;al. (2007). "Electro-chemical and biological properties of carbon nanotube based multi-electrode arrays". <i>Nanotechnology</i>. <b>18</b> (3): 035201. <a href="Bibcode_(identifier)" class="mw-redirect" title="Bibcode (identifier)">Bibcode</a>:<a rel="nofollow" class="external text" href="https://ui.adsabs.harvard.edu/abs/2007Nanot..18c5201G">2007Nanot..18c5201G</a>. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<a rel="nofollow" class="external text" href="https://doi.org/10.1088%2F0957-4484%2F18%2F3%2F035201">10.1088/0957-4484/18/3/035201</a>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/19636111">19636111</a>. <a href="S2CID_(identifier)" class="mw-redirect" title="S2CID (identifier)">S2CID</a>&nbsp;<a rel="nofollow" class="external text" href="https://api.semanticscholar.org/CorpusID:44491589">44491589</a>.</cite></span>
</li>
<li id="cite_note-22"><span class="mw-cite-backlink"><b><a href="#cite_ref-22">^</a></b></span> <span class="reference-text"><cite id="CITEREFBrüggemannWolfrumMaybeckMourzina2011" class="citation journal cs1">Brüggemann, D.; et&nbsp;al. (2011). "Nanostructured gold microelectrodes for extracellular recording from electrogenic cells". <i>Nanotechnology</i>. <b>22</b> (26): 265104. <a href="Bibcode_(identifier)" class="mw-redirect" title="Bibcode (identifier)">Bibcode</a>:<a rel="nofollow" class="external text" href="https://ui.adsabs.harvard.edu/abs/2011Nanot..22z5104B">2011Nanot..22z5104B</a>. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<a rel="nofollow" class="external text" href="https://doi.org/10.1088%2F0957-4484%2F22%2F26%2F265104">10.1088/0957-4484/22/26/265104</a>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/21586820">21586820</a>. <a href="S2CID_(identifier)" class="mw-redirect" title="S2CID (identifier)">S2CID</a>&nbsp;<a rel="nofollow" class="external text" href="https://api.semanticscholar.org/CorpusID:20738358">20738358</a>.</cite></span>
</li>
<li id="cite_note-23"><span class="mw-cite-backlink"><b><a href="#cite_ref-23">^</a></b></span> <span class="reference-text"><cite id="CITEREFHofmannKätelhönSchottdorfOffenhäusser2011" class="citation journal cs1">Hofmann, B.; et&nbsp;al. (2011). <span class="id-lock-subscription" title="Paid subscription required"><a rel="nofollow" class="external text" href="http://juser.fz-juelich.de/search?p=id:%22PreJuSER-16546%22">"Nanocavity electrode array for recording from electrogenic cells"</a></span>. <i>Lab Chip</i>. <b>11</b> (6): <span class="nowrap">1054–</span>8. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<a rel="nofollow" class="external text" href="https://doi.org/10.1039%2FC0LC00582G">10.1039/C0LC00582G</a>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/21286648">21286648</a>.</cite></span>
</li>
<li id="cite_note-24"><span class="mw-cite-backlink"><b><a href="#cite_ref-24">^</a></b></span> <span class="reference-text"><cite id="CITEREFTsaiSawyerBraddYuste2017" class="citation journal cs1">Tsai, David; Sawyer, Daniel; Bradd, Adrian; Yuste, Rafael; Shepard, Kenneth (2017). <a rel="nofollow" class="external text" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5702607">"A very large-scale microelectrode array for cellular-resolution electrophysiology"</a>. <i>Nature Communications</i>. <b>8</b> (1) 1802. <a href="Bibcode_(identifier)" class="mw-redirect" title="Bibcode (identifier)">Bibcode</a>:<a rel="nofollow" class="external text" href="https://ui.adsabs.harvard.edu/abs/2017NatCo...8.1802T">2017NatCo...8.1802T</a>. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<a rel="nofollow" class="external text" href="https://doi.org/10.1038%2Fs41467-017-02009-x">10.1038/s41467-017-02009-x</a>. <a href="PMC_(identifier)" class="mw-redirect" title="PMC (identifier)">PMC</a>&nbsp;<span class="id-lock-free" title="Freely accessible"><a rel="nofollow" class="external text" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5702607">5702607</a></span>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/29176752">29176752</a>.</cite></span>
</li>
<li id="cite_note-25"><span class="mw-cite-backlink"><b><a href="#cite_ref-25">^</a></b></span> <span class="reference-text"><cite id="CITEREFWangJungGertnerPark2025" class="citation journal cs1">Wang, Jun; Jung, Woo-Bin; Gertner, Rona; Park, Hongkun; Ham, Donhee (2025). "Synaptic connectivity mapping among thousands of neurons via parallelized intracellular recording with a microhole electrode array". <i>Nature Biomedical Engineering</i>. <b>9</b> (7): <span class="nowrap">1144–</span>1154. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<a rel="nofollow" class="external text" href="https://doi.org/10.1038%2Fs41551-025-01352-5">10.1038/s41551-025-01352-5</a>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/39934437">39934437</a>.</cite></span>
</li>
<li id="cite_note-26"><span class="mw-cite-backlink"><b><a href="#cite_ref-26">^</a></b></span> <span class="reference-text"><cite id="CITEREFBhandariNegiSolzbacher2010" class="citation journal cs1">Bhandari, R.; Negi, S.; Solzbacher, F. (2010). "Wafer Scale Fabrication of Penetrating Neural Electrode Arrays". <i>Biomedical Microdevices</i>. <b>12</b> (5): <span class="nowrap">797–</span>807. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<a rel="nofollow" class="external text" href="https://doi.org/10.1007%2Fs10544-010-9434-1">10.1007/s10544-010-9434-1</a>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/20480240">20480240</a>. <a href="S2CID_(identifier)" class="mw-redirect" title="S2CID (identifier)">S2CID</a>&nbsp;<a rel="nofollow" class="external text" href="https://api.semanticscholar.org/CorpusID:25288723">25288723</a>.</cite></span>
</li>
<li id="cite_note-27"><span class="mw-cite-backlink"><b><a href="#cite_ref-27">^</a></b></span> <span class="reference-text"><cite id="CITEREFChenZhangLiangCao2020" class="citation journal cs1">Chen, Ying; Zhang, Yingchao; Liang, Ziwei; Cao, Yu; Han, Zhiyuan; Feng, Xue (2020-02-04). <a rel="nofollow" class="external text" href="https://doi.org/10.1038%2Fs41528-020-0065-1">"Flexible inorganic bioelectronics"</a>. <i>npj Flexible Electronics</i>. <b>4</b> (1) 2: <span class="nowrap">1–</span>20. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<span class="id-lock-free" title="Freely accessible"><a rel="nofollow" class="external text" href="https://doi.org/10.1038%2Fs41528-020-0065-1">10.1038/s41528-020-0065-1</a></span>. <a href="ISSN_(identifier)" class="mw-redirect" title="ISSN (identifier)">ISSN</a>&nbsp;<a rel="nofollow" class="external text" href="https://search.worldcat.org/issn/2397-4621">2397-4621</a>.</cite></span>
</li>
<li id="cite_note-Angelides-28"><span class="mw-cite-backlink"><b><a href="#cite_ref-Angelides_28-0">^</a></b></span> <span class="reference-text"><cite id="CITEREFAngelidesElmerLoftusElson1988" class="citation journal cs1">Angelides, K. J.; Elmer, L. W.; Loftus, D.; Elson, E. (1988). <a rel="nofollow" class="external text" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2115131">"Distribution and lateral mobility of voltage-dependent sodium channels in neurons"</a>. <i>J. Cell Biol</i>. <b>106</b> (6): <span class="nowrap">1911–</span>25. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<span class="id-lock-free" title="Freely accessible"><a rel="nofollow" class="external text" href="https://doi.org/10.1083%2Fjcb.106.6.1911">10.1083/jcb.106.6.1911</a></span>. <a href="PMC_(identifier)" class="mw-redirect" title="PMC (identifier)">PMC</a>&nbsp;<span class="id-lock-free" title="Freely accessible"><a rel="nofollow" class="external text" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2115131">2115131</a></span>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/2454930">2454930</a>.</cite></span>
</li>
<li id="cite_note-29"><span class="mw-cite-backlink"><b><a href="#cite_ref-29">^</a></b></span> <span class="reference-text"><cite id="CITEREFDastgheybYooHaughey2020" class="citation journal cs1">Dastgheyb, Raha M.; Yoo, Seung-Wan; Haughey, Norman J. (2020). <a rel="nofollow" class="external text" href="https://doi.org/10.1007%2Fs12021-019-09431-0">"MEAnalyzer – a Spike Train Analysis Tool for Multi Electrode Arrays"</a>. <i>Neuroinformatics</i>. <b>18</b> (1): <span class="nowrap">163–</span>179. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<span class="id-lock-free" title="Freely accessible"><a rel="nofollow" class="external text" href="https://doi.org/10.1007%2Fs12021-019-09431-0">10.1007/s12021-019-09431-0</a></span>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/31273627">31273627</a>. <a href="S2CID_(identifier)" class="mw-redirect" title="S2CID (identifier)">S2CID</a>&nbsp;<a rel="nofollow" class="external text" href="https://api.semanticscholar.org/CorpusID:195795810">195795810</a>.</cite></span>
</li>
<li id="cite_note-30"><span class="mw-cite-backlink"><b><a href="#cite_ref-30">^</a></b></span> <span class="reference-text"><cite id="CITEREFWhitsonKubotaShimonoJia2006" class="citation book cs1">Whitson, J.; Kubota, D.; Shimono, K.; Jia, Y.; Taketani, M. (2006). "Multi-Electrode Arrays: Enhancing Traditional Methods and Enabling Network Physiology". In Baudry, M.; Taketani, M. (eds.). <i>Advances in Network Electrophysiology Using Multi-Electrode Arrays</i>. New York: Springer. pp.&nbsp;<span class="nowrap">38–</span>68. <a href="ISBN_(identifier)" class="mw-redirect" title="ISBN (identifier)">ISBN</a>&nbsp;<bdi>0-387-25857-4</bdi>.</cite></span>
</li>
<li id="cite_note-31"><span class="mw-cite-backlink"><b><a href="#cite_ref-31">^</a></b></span> <span class="reference-text"><cite id="CITEREFSalatinoLudwigKozaiPurcell2017" class="citation journal cs1">Salatino, Joseph W.; Ludwig, Kip A.; Kozai, Takashi D. Y.; Purcell, Erin K. (2017-11-10). <a rel="nofollow" class="external text" href="https://doi.org/10.1038/s41551-017-0154-1">"Glial responses to implanted electrodes in the brain"</a>. <i>Nature Biomedical Engineering</i>. <b>1</b> (11): <span class="nowrap">862–</span>877. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<a rel="nofollow" class="external text" href="https://doi.org/10.1038%2Fs41551-017-0154-1">10.1038/s41551-017-0154-1</a>. <a href="ISSN_(identifier)" class="mw-redirect" title="ISSN (identifier)">ISSN</a>&nbsp;<a rel="nofollow" class="external text" href="https://search.worldcat.org/issn/2157-846X">2157-846X</a>. <a href="PMC_(identifier)" class="mw-redirect" title="PMC (identifier)">PMC</a>&nbsp;<span class="id-lock-free" title="Freely accessible"><a rel="nofollow" class="external text" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6261524">6261524</a></span>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/30505625">30505625</a>.</cite></span>
</li>
<li id="cite_note-32"><span class="mw-cite-backlink"><b><a href="#cite_ref-32">^</a></b></span> <span class="reference-text"><cite id="CITEREFBiranMartinTresco2005" class="citation journal cs1">Biran, R.; Martin, D. C.; Tresco, P. A. (2005). "Neuronal cell loss accompanies the brain tissue response to chronically implanted silicon microelectrode arrays". <i>Experimental Neurology</i>. <b>195</b> (1): <span class="nowrap">115–</span>26. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<a rel="nofollow" class="external text" href="https://doi.org/10.1016%2Fj.expneurol.2005.04.020">10.1016/j.expneurol.2005.04.020</a>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/16045910">16045910</a>. <a href="S2CID_(identifier)" class="mw-redirect" title="S2CID (identifier)">S2CID</a>&nbsp;<a rel="nofollow" class="external text" href="https://api.semanticscholar.org/CorpusID:14077903">14077903</a>.</cite></span>
</li>
<li id="cite_note-33"><span class="mw-cite-backlink"><b><a href="#cite_ref-33">^</a></b></span> <span class="reference-text">McConnell GC, Rees HD, Levey AI, Gross RG, Bellamkonda RV. 2008. Chronic electrodes induce a local, neurodegenerative state: Implications for chronic recording reliability. <i>Society for Neuroscience</i>, Washington, D.C</span>
</li>
<li id="cite_note-34"><span class="mw-cite-backlink"><b><a href="#cite_ref-34">^</a></b></span> <span class="reference-text"><cite id="CITEREFHeMcConnellBellamkonda2006" class="citation journal cs1">He, W.; McConnell, G. C.; Bellamkonda, R. V. (2006). "Nanoscale laminin coating modulates cortical scarring response around implanted silicon microelectrode arrays". <i>Journal of Neural Engineering</i>. <b>3</b> (4): <span class="nowrap">316–</span>26. <a href="Bibcode_(identifier)" class="mw-redirect" title="Bibcode (identifier)">Bibcode</a>:<a rel="nofollow" class="external text" href="https://ui.adsabs.harvard.edu/abs/2006JNEng...3..316H">2006JNEng...3..316H</a>. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<a rel="nofollow" class="external text" href="https://doi.org/10.1088%2F1741-2560%2F3%2F4%2F009">10.1088/1741-2560/3/4/009</a>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/17124336">17124336</a>. <a href="S2CID_(identifier)" class="mw-redirect" title="S2CID (identifier)">S2CID</a>&nbsp;<a rel="nofollow" class="external text" href="https://api.semanticscholar.org/CorpusID:22732939">22732939</a>.</cite></span>
</li>
<li id="cite_note-Gopal-35"><span class="mw-cite-backlink"><b><a href="#cite_ref-Gopal_35-0">^</a></b></span> <span class="reference-text"><cite id="CITEREFGopalGross2006" class="citation book cs1">Gopal, K. V.; Gross, G. W. (2006). "Emerging Histotypic Properties of Cultured Neuronal Networks". In Baudry, M.; Taketani, M. (eds.). <i>Advances in Network Electrophysiology Using Multi-Electrode Arrays</i>. New York: Springer. pp.&nbsp;<span class="nowrap">193–</span>214. <a href="ISBN_(identifier)" class="mw-redirect" title="ISBN (identifier)">ISBN</a>&nbsp;<bdi>0-387-25857-4</bdi>.</cite></span>
</li>
<li id="cite_note-Xia-36"><span class="mw-cite-backlink"><b><a href="#cite_ref-Xia_36-0">^</a></b></span> <span class="reference-text"><cite id="CITEREFXiaGross2003" class="citation journal cs1">Xia, Y. &amp; Gross, G. W. (2003). "Histotypic electrophysiological responses of cultured neuronal networks to ethanol". <i>Alcohol</i>. <b>30</b> (3): <span class="nowrap">167–</span>74. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<a rel="nofollow" class="external text" href="https://doi.org/10.1016%2FS0741-8329%2803%2900135-6">10.1016/S0741-8329(03)00135-6</a>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/13679110">13679110</a>.</cite></span>
</li>
<li id="cite_note-37"><span class="mw-cite-backlink"><b><a href="#cite_ref-37">^</a></b></span> <span class="reference-text"><cite id="CITEREFNovellinoScelfoPalosaariPrice2011" class="citation journal cs1">Novellino, A; Scelfo, B; Palosaari, T; Price, A; Sobanski, T; Shafer, T; Johnstone, A; Gross, G; Gramowski, A; Scroeder, O; Jügelt, K; Chiappalone, M; Benfenati, F; Martinoia, S; Tedesco, M; Defranchi, E; D'Angelo, P; Whelan, M (April 27, 2011). <a rel="nofollow" class="external text" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3087164">"Development of micro-electrode array based tests for neurotoxicity: assessment of interlaboratory reproducibility with neuroactive chemicals"</a>. <i>Front. Neuroeng</i>. <b>4</b> (4): 4. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<span class="id-lock-free" title="Freely accessible"><a rel="nofollow" class="external text" href="https://doi.org/10.3389%2Ffneng.2011.00004">10.3389/fneng.2011.00004</a></span>. <a href="PMC_(identifier)" class="mw-redirect" title="PMC (identifier)">PMC</a>&nbsp;<span class="id-lock-free" title="Freely accessible"><a rel="nofollow" class="external text" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3087164">3087164</a></span>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/21562604">21562604</a>.</cite></span>
</li>
<li id="cite_note-Order-38"><span class="mw-cite-backlink">^ <a href="#cite_ref-Order_38-0"><sup><i><b>a</b></i></sup></a> <a href="#cite_ref-Order_38-1"><sup><i><b>b</b></i></sup></a></span> <span class="reference-text"><cite id="CITEREFShahafEytanGalKermany2008" class="citation journal cs1">Shahaf, G.; Eytan, D.; Gal, A.; Kermany, E.; Lyakhov, V.; Zrenner, C.; Marom, S. (2008). <a rel="nofollow" class="external text" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2580731">"Order-based representation in random networks of cortical neurons"</a>. <i>PLOS Comput. Biol</i>. <b>4</b> (11): e1000228. <a href="Bibcode_(identifier)" class="mw-redirect" title="Bibcode (identifier)">Bibcode</a>:<a rel="nofollow" class="external text" href="https://ui.adsabs.harvard.edu/abs/2008PLSCB...4E0228S">2008PLSCB...4E0228S</a>. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<span class="id-lock-free" title="Freely accessible"><a rel="nofollow" class="external text" href="https://doi.org/10.1371%2Fjournal.pcbi.1000228">10.1371/journal.pcbi.1000228</a></span>. <a href="PMC_(identifier)" class="mw-redirect" title="PMC (identifier)">PMC</a>&nbsp;<span class="id-lock-free" title="Freely accessible"><a rel="nofollow" class="external text" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2580731">2580731</a></span>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/19023409">19023409</a>.</cite></span>
</li>
<li id="cite_note-39"><span class="mw-cite-backlink"><b><a href="#cite_ref-39">^</a></b></span> <span class="reference-text"><cite id="CITEREFEytanBrennerMarom2003" class="citation journal cs1">Eytan, D.; Brenner, N.; Marom, S. (2003). <a rel="nofollow" class="external text" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6740578">"Selective adaptation in networks of cortical neurons"</a>. <i>J. Neurosci</i>. <b>23</b> (28): <span class="nowrap">9349–</span>9356. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<span class="id-lock-free" title="Freely accessible"><a rel="nofollow" class="external text" href="https://doi.org/10.1523%2FJNEUROSCI.23-28-09349.2003">10.1523/JNEUROSCI.23-28-09349.2003</a></span>. <a href="PMC_(identifier)" class="mw-redirect" title="PMC (identifier)">PMC</a>&nbsp;<span class="id-lock-free" title="Freely accessible"><a rel="nofollow" class="external text" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6740578">6740578</a></span>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/14561862">14561862</a>.</cite></span>
</li>
<li id="cite_note-40"><span class="mw-cite-backlink"><b><a href="#cite_ref-40">^</a></b></span> <span class="reference-text"><cite id="CITEREFEytanMarom2006" class="citation journal cs1">Eytan, D.; Marom, S. (2006). <a rel="nofollow" class="external text" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6674346">"Dynamics and effective topology underlying synchronization in networks of cortical neurons"</a>. <i>J. Neurosci</i>. <b>26</b> (33): <span class="nowrap">8465–</span>8476. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<span class="id-lock-free" title="Freely accessible"><a rel="nofollow" class="external text" href="https://doi.org/10.1523%2FJNEUROSCI.1627-06.2006">10.1523/JNEUROSCI.1627-06.2006</a></span>. <a href="PMC_(identifier)" class="mw-redirect" title="PMC (identifier)">PMC</a>&nbsp;<span class="id-lock-free" title="Freely accessible"><a rel="nofollow" class="external text" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6674346">6674346</a></span>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/16914671">16914671</a>.</cite></span>
</li>
<li id="cite_note-41"><span class="mw-cite-backlink"><b><a href="#cite_ref-41">^</a></b></span> <span class="reference-text"><cite id="CITEREFEytanMinerbiZivMarom2004" class="citation journal cs1">Eytan, D.; Minerbi, A.; Ziv, N. E.; Marom, S. (2004). "Dopamine-induced dispersion of correlations between action potentials in networks of cortical neurons". <i>J Neurophysiol</i>. <b>92</b> (3): <span class="nowrap">1817–</span>1824. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<a rel="nofollow" class="external text" href="https://doi.org/10.1152%2Fjn.00202.2004">10.1152/jn.00202.2004</a>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/15084641">15084641</a>.</cite></span>
</li>
<li id="cite_note-42"><span class="mw-cite-backlink"><b><a href="#cite_ref-42">^</a></b></span> <span class="reference-text"><cite id="CITEREFTatenoJimboRobinson2005" class="citation journal cs1">Tateno, T.; Jimbo, Y.; Robinson, H. P. (2005). "Spatio-temporal cholinergic modulation in cultured networks of rat cortical neurons: spontaneous activity". <i>Neuroscience</i>. <b>134</b> (2): <span class="nowrap">425–</span>437. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<a rel="nofollow" class="external text" href="https://doi.org/10.1016%2Fj.neuroscience.2005.04.049">10.1016/j.neuroscience.2005.04.049</a>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/15993003">15993003</a>. <a href="S2CID_(identifier)" class="mw-redirect" title="S2CID (identifier)">S2CID</a>&nbsp;<a rel="nofollow" class="external text" href="https://api.semanticscholar.org/CorpusID:22745827">22745827</a>.</cite></span>
</li>
<li id="cite_note-43"><span class="mw-cite-backlink"><b><a href="#cite_ref-43">^</a></b></span> <span class="reference-text"><cite id="CITEREFTatenoJimboRobinson2005" class="citation journal cs1">Tateno, T.; Jimbo, Y.; Robinson, H. P. (2005). "Spatio-temporal cholinergic modulation in cultured networks of rat cortical neurons: evoked activity". <i>Neuroscience</i>. <b>134</b> (2): <span class="nowrap">439–</span>448. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<a rel="nofollow" class="external text" href="https://doi.org/10.1016%2Fj.neuroscience.2005.04.055">10.1016/j.neuroscience.2005.04.055</a>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/15979809">15979809</a>. <a href="S2CID_(identifier)" class="mw-redirect" title="S2CID (identifier)">S2CID</a>&nbsp;<a rel="nofollow" class="external text" href="https://api.semanticscholar.org/CorpusID:6922531">6922531</a>.</cite></span>
</li>
<li id="cite_note-44"><span class="mw-cite-backlink"><b><a href="#cite_ref-44">^</a></b></span> <span class="reference-text"><cite id="CITEREFShahafMarom2001" class="citation journal cs1">Shahaf, G.; Marom, S. (2001). <a rel="nofollow" class="external text" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6762268">"Learning in networks of cortical neurons"</a>. <i>J. Neurosci</i>. <b>21</b> (22): <span class="nowrap">8782–</span>8788. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<span class="id-lock-free" title="Freely accessible"><a rel="nofollow" class="external text" href="https://doi.org/10.1523%2FJNEUROSCI.21-22-08782.2001">10.1523/JNEUROSCI.21-22-08782.2001</a></span>. <a href="PMC_(identifier)" class="mw-redirect" title="PMC (identifier)">PMC</a>&nbsp;<span class="id-lock-free" title="Freely accessible"><a rel="nofollow" class="external text" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6762268">6762268</a></span>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/11698590">11698590</a>.</cite></span>
</li>
<li id="cite_note-45"><span class="mw-cite-backlink"><b><a href="#cite_ref-45">^</a></b></span> <span class="reference-text"><cite id="CITEREFStegengaLe_FeberMaraniRutten2009" class="citation journal cs1">Stegenga, J.; Le Feber, J.; Marani, E.; Rutten, W. L. (2009). <a rel="nofollow" class="external text" href="https://research.utwente.nl/en/publications/the-effect-of-learning-on-bursting(be00a8b9-bb42-4e8f-b675-891b7f23e5d2).html">"The effect of learning on bursting"</a>. <i>IEEE Trans Biomed Eng</i>. <b>56</b> (4): <span class="nowrap">1220–</span>1227. <a href="Bibcode_(identifier)" class="mw-redirect" title="Bibcode (identifier)">Bibcode</a>:<a rel="nofollow" class="external text" href="https://ui.adsabs.harvard.edu/abs/2009ITBE...56.1220S">2009ITBE...56.1220S</a>. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<a rel="nofollow" class="external text" href="https://doi.org/10.1109%2FTBME.2008.2006856">10.1109/TBME.2008.2006856</a>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/19272893">19272893</a>. <a href="S2CID_(identifier)" class="mw-redirect" title="S2CID (identifier)">S2CID</a>&nbsp;<a rel="nofollow" class="external text" href="https://api.semanticscholar.org/CorpusID:12379440">12379440</a>.</cite></span>
</li>
<li id="cite_note-Animat-46"><span class="mw-cite-backlink"><b><a href="#cite_ref-Animat_46-0">^</a></b></span> <span class="reference-text"><cite id="CITEREFDeMarseWagenaarBlauPotter2001" class="citation journal cs1">DeMarse, T. B.; Wagenaar, D. A.; Blau, A. W.; Potter, S. M. (2001). <a rel="nofollow" class="external text" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2440704">"The Neurally Controlled Animat: Biological Brains Acting with Simulated Bodies"</a>. <i>Autonomous Robots</i>. <b>11</b> (3): <span class="nowrap">305–</span>10. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<a rel="nofollow" class="external text" href="https://doi.org/10.1023%2FA%3A1012407611130">10.1023/A:1012407611130</a>. <a href="PMC_(identifier)" class="mw-redirect" title="PMC (identifier)">PMC</a>&nbsp;<span class="id-lock-free" title="Freely accessible"><a rel="nofollow" class="external text" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2440704">2440704</a></span>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/18584059">18584059</a>.</cite></span>
</li>
<li id="cite_note-potterrobot-47"><span class="mw-cite-backlink"><b><a href="#cite_ref-potterrobot_47-0">^</a></b></span> <span class="reference-text"><cite id="CITEREFPotterMadhavanDeMarse2003" class="citation book cs1">Potter, S. M.; Madhavan, R.; DeMarse, T. B. (2003). <a rel="nofollow" class="external text" href="https://authors.library.caltech.edu/27336/">"Long-term bidirectional neuron interfaces for robotic control, and in vitro learning studies"</a>. <a rel="nofollow" class="external text" href="https://resolver.caltech.edu/CaltechAUTHORS:20111020-154335843"><i>Proceedings of the 25th Annual International Conference of the IEEE Engineering in Medicine and Biology Society (IEEE Cat. No.03CH37439)</i></a>. pp.&nbsp;<span class="nowrap">3690–</span>3693. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<a rel="nofollow" class="external text" href="https://doi.org/10.1109%2FIEMBS.2003.1280959">10.1109/IEMBS.2003.1280959</a>. <a href="ISBN_(identifier)" class="mw-redirect" title="ISBN (identifier)">ISBN</a>&nbsp;<bdi>0-7803-7789-3</bdi>. <a href="S2CID_(identifier)" class="mw-redirect" title="S2CID (identifier)">S2CID</a>&nbsp;<a rel="nofollow" class="external text" href="https://api.semanticscholar.org/CorpusID:12213854">12213854</a>.</cite></span>
</li>
<li id="cite_note-Marks-48"><span class="mw-cite-backlink"><b><a href="#cite_ref-Marks_48-0">^</a></b></span> <span class="reference-text"><cite id="CITEREFMarks2008" class="citation journal cs1">Marks, P. (2008). "Rise of the rat-brained robots". <i>New Scientist</i>. <b>199</b> (2669): <span class="nowrap">22–</span>23. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<a rel="nofollow" class="external text" href="https://doi.org/10.1016%2FS0262-4079%2808%2962062-X">10.1016/S0262-4079(08)62062-X</a>.</cite></span>
</li>
<li id="cite_note-49"><span class="mw-cite-backlink"><b><a href="#cite_ref-49">^</a></b></span> <span class="reference-text"><cite id="CITEREFMaromMeirBraunGal2009" class="citation journal cs1">Marom, S.; Meir, R.; Braun, E.; Gal, A.; Kermany, E.; Eytan, D. (2009). <a rel="nofollow" class="external text" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2691154">"On the precarious path of reverse neuro-engineering"</a>. <i>Front Comput Neurosci</i>. <b>3</b>: 5. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<span class="id-lock-free" title="Freely accessible"><a rel="nofollow" class="external text" href="https://doi.org/10.3389%2Fneuro.10.005.2009">10.3389/neuro.10.005.2009</a></span>. <a href="PMC_(identifier)" class="mw-redirect" title="PMC (identifier)">PMC</a>&nbsp;<span class="id-lock-free" title="Freely accessible"><a rel="nofollow" class="external text" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2691154">2691154</a></span>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/19503751">19503751</a>.</cite></span>
</li>
<li id="cite_note-Colgin-50"><span class="mw-cite-backlink"><b><a href="#cite_ref-Colgin_50-0">^</a></b></span> <span class="reference-text"><cite id="CITEREFColginKramarGallLynch2003" class="citation journal cs1">Colgin, L. L.; Kramar, E. A.; Gall, C. M.; Lynch, G. (2003). "Septal modulation of excitatory transmission in hippocampus". <i>J Neurophysiol</i>. <b>90</b> (4): <span class="nowrap">2358–</span>2366. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<a rel="nofollow" class="external text" href="https://doi.org/10.1152%2Fjn.00262.2003">10.1152/jn.00262.2003</a>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/12840078">12840078</a>.</cite></span>
</li>
<li id="cite_note-51"><span class="mw-cite-backlink"><b><a href="#cite_ref-51">^</a></b></span> <span class="reference-text"><cite id="CITEREFBreitSchulzBenabid2004" class="citation journal cs1">Breit, S.; Schulz, J. B.; Benabid, A. L. (2004). "Deep Brain Stimulation". <i>Cell and Tissue Research</i>. <b>318</b> (1): <span class="nowrap">275–</span>288. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<a rel="nofollow" class="external text" href="https://doi.org/10.1007%2Fs00441-004-0936-0">10.1007/s00441-004-0936-0</a>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/15322914">15322914</a>. <a href="S2CID_(identifier)" class="mw-redirect" title="S2CID (identifier)">S2CID</a>&nbsp;<a rel="nofollow" class="external text" href="https://api.semanticscholar.org/CorpusID:25263765">25263765</a>.</cite></span>
</li>
<li id="cite_note-52"><span class="mw-cite-backlink"><b><a href="#cite_ref-52">^</a></b></span> <span class="reference-text"><cite id="CITEREFWarwickGassonHuttGoodhew2003" class="citation journal cs1">Warwick, K.; Gasson, M.; Hutt, B.; Goodhew, I.; Kyberd, P.; Andrews, B.; Teddy, P.; Shad, A. (2003). "The Application of Implant Technology for Cybernetic Systems". <i>Archives of Neurology</i>. <b>60</b> (10): <span class="nowrap">1369–</span>1373. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<a rel="nofollow" class="external text" href="https://doi.org/10.1001%2Farchneur.60.10.1369">10.1001/archneur.60.10.1369</a>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/14568806">14568806</a>.</cite></span>
</li>
<li id="cite_note-53"><span class="mw-cite-backlink"><b><a href="#cite_ref-53">^</a></b></span> <span class="reference-text"><cite id="CITEREFSchwartz2004" class="citation journal cs1">Schwartz, A. B. (2004). "Cortical Neural Prosthetics". <i>Annual Review of Neuroscience</i>. <b>27</b>: <span class="nowrap">487–</span>507. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<a rel="nofollow" class="external text" href="https://doi.org/10.1146%2Fannurev.neuro.27.070203.144233">10.1146/annurev.neuro.27.070203.144233</a>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/15217341">15217341</a>.</cite></span>
</li>
<li id="cite_note-54"><span class="mw-cite-backlink"><b><a href="#cite_ref-54">^</a></b></span> <span class="reference-text">Thacker, Eugene (2010) "What is Biomedia?" in "Critical Terms for Media Studies" University of Chicago Press. Chicago and London, pp118-30</span>
</li>
<li id="cite_note-55"><span class="mw-cite-backlink"><b><a href="#cite_ref-55">^</a></b></span> <span class="reference-text"><cite id="CITEREFBakkumGamblenBen-AryChao2007" class="citation journal cs1">Bakkum DJ, Gamblen PM, Ben-Ary G, Chao ZC, Potter SM (2007). <a rel="nofollow" class="external text" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2533587">"MEART: The Semi-Living Artist"</a>. <i>Frontiers in Neurorobotics</i>. <b>1</b>: 5. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<span class="id-lock-free" title="Freely accessible"><a rel="nofollow" class="external text" href="https://doi.org/10.3389%2Fneuro.12.005.2007">10.3389/neuro.12.005.2007</a></span>. <a href="PMC_(identifier)" class="mw-redirect" title="PMC (identifier)">PMC</a>&nbsp;<span class="id-lock-free" title="Freely accessible"><a rel="nofollow" class="external text" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2533587">2533587</a></span>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/18958276">18958276</a>.</cite></span>
</li>
<li id="cite_note-56"><span class="mw-cite-backlink"><b><a href="#cite_ref-56">^</a></b></span> <span class="reference-text"><cite id="CITEREFBakkumShkolnikBen-AryGamblen2004" class="citation book cs1">Bakkum, Douglas J.; Shkolnik, Alexander C.; Ben-Ary, Guy; Gamblen, Phil; DeMarse, Thomas B.; Potter, Steve M. (2004). "Removing Some 'A' from AI: Embodied Cultured Networks". <i>Embodied Artificial Intelligence</i>. Lecture Notes in Computer Science. Vol.&nbsp;3139. pp.&nbsp;<span class="nowrap">130–</span>45. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<a rel="nofollow" class="external text" href="https://doi.org/10.1007%2F978-3-540-27833-7_10">10.1007/978-3-540-27833-7_10</a>. <a href="ISBN_(identifier)" class="mw-redirect" title="ISBN (identifier)">ISBN</a>&nbsp;<bdi>978-3-540-22484-6</bdi>.</cite></span>
</li>
<li id="cite_note-Group_2002_pp.60-68-57"><span class="mw-cite-backlink">^ <a href="#cite_ref-Group_2002_pp.60-68_57-0"><sup><i><b>a</b></i></sup></a> <a href="#cite_ref-Group_2002_pp.60-68_57-1"><sup><i><b>b</b></i></sup></a></span> <span class="reference-text">SymbioticA research Group (2002) MEART – the semi living artist (AKA Fish &amp; Chips) Stage 2 pp.60-68. in BEAP, Biennale of Electronic Art, 2002: The Exhibitions. Thomas, Paul, Ed., Pub. Curtin University. <a href="ISBN_(identifier)" class="mw-redirect" title="ISBN (identifier)">ISBN</a>&nbsp;<bdi>1 74067 157 0</bdi>.</span>
</li>
<li id="cite_note-58"><span class="mw-cite-backlink"><b><a href="#cite_ref-58">^</a></b></span> <span class="reference-text">Ben-Ary, G, Zurr, I, Richards, M, Gamblen, P, Catts, O and Bunt, S (2001) “Fish and Chips, The current Status of the Research by the SymbioticA research group” in Takeover, wer macht die Kunst von morgen (who's doing the art of tomorrow) pp. 141-147 Springer Vien.</span>
</li>
<li id="cite_note-59"><span class="mw-cite-backlink"><b><a href="#cite_ref-59">^</a></b></span> <span class="reference-text"><cite class="citation web cs1"><a rel="nofollow" class="external text" href="https://web.archive.org/web/20140811173950/http://www.pica.org.au/view/BioFeel%3A+biology+%2B+art/275/">"BioFeel: biology + art"</a>. Perth Institute for Contemporary Art. Archived from <a rel="nofollow" class="external text" href="http://www.pica.org.au/view/BioFeel%3A+biology+%2B+art/275/">the original</a> on 2014-08-11.</cite></span>
</li>
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