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<title>Frameshift mutation</title>
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<span id="openzim-page-title" class="mw-page-title-main"><span class="mw-page-title-main">Frameshift mutation</span></span>
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<p>A <b>frameshift mutation</b> (also called a <b>framing error</b> or a <b>reading frame shift</b>) is a <a href="Genetic_mutation" class="mw-redirect" title="Genetic mutation">genetic mutation</a> caused by <a href="Indel" title="Indel">indels</a> (<a href="Gene_insertion" class="mw-redirect" title="Gene insertion">insertions</a> or <a href="Genetic_deletion" class="mw-redirect" title="Genetic deletion">deletions</a>) of a number of <a href="Nucleotide" title="Nucleotide">nucleotides</a> in a DNA sequence that is not divisible by three. Due to the triplet nature of <a href="Gene_expression" title="Gene expression">gene expression</a> by <a href="Codon" class="mw-redirect" title="Codon">codons</a>, the insertion or deletion can change the <a href="Reading_frame" title="Reading frame">reading frame</a> (the grouping of the codons), resulting in a completely different <a href="Translation_(genetics)" class="mw-redirect" title="Translation (genetics)">translation</a> from the original. The earlier in the sequence the deletion or insertion occurs, the more altered the protein.<sup id="cite_ref-MBoG_6th_2008_1-0" class="reference"><a href="#cite_note-MBoG_6th_2008-1"><span class="cite-bracket">[</span>1<span class="cite-bracket">]</span></a></sup> A frameshift mutation is not the same as a <a href="Single-nucleotide_polymorphism" title="Single-nucleotide polymorphism">single-nucleotide polymorphism</a> in which a nucleotide is replaced, rather than inserted or deleted. A <a href="Frameshift" class="mw-redirect" title="Frameshift">frameshift</a> mutation will in general cause the reading of the codons after the mutation to code for different amino acids. The frameshift mutation will also alter the first stop codon ("UAA", "UGA" or "UAG") encountered in the sequence. The polypeptide being created could be abnormally short or abnormally long, and will most likely not be functional.<sup id="cite_ref-Nature_Mutation_2-0" class="reference"><a href="#cite_note-Nature_Mutation-2"><span class="cite-bracket">[</span>2<span class="cite-bracket">]</span></a></sup>
</p><p>Frameshift mutations are apparent in severe genetic diseases such as <a href="Tay%E2%80%93Sachs_disease" title="Tay–Sachs disease">Tay–Sachs disease</a>; they increase susceptibility to certain cancers and classes of <a href="Familial_hypercholesterolaemia" class="mw-redirect" title="Familial hypercholesterolaemia">familial hypercholesterolaemia</a>; in 1997,<sup id="cite_ref-HIV_resistance_3-0" class="reference"><a href="#cite_note-HIV_resistance-3"><span class="cite-bracket">[</span>3<span class="cite-bracket">]</span></a></sup> a frameshift mutation was linked to resistance to infection by the HIV retrovirus. Frameshift mutations have been proposed as a source of biological novelty, as with the alleged creation of <a href="Nylonase" class="mw-redirect" title="Nylonase">nylonase</a>, however, this interpretation is controversial. A study by Negoro <i>et al.</i> (2006)<sup id="cite_ref-4" class="reference"><a href="#cite_note-4"><span class="cite-bracket">[</span>4<span class="cite-bracket">]</span></a></sup> found that a frameshift mutation was unlikely to have been the cause and that rather a two amino acid substitution in the <a href="Active_site" title="Active site">active site</a> of an ancestral <a href="Esterase" title="Esterase">esterase</a> resulted in nylonase.
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<div class="mw-heading mw-heading2"><h2 id="Background">Background</h2></div>
<p>The information contained in DNA determines protein function in the cells of all organisms. Transcription and translation allow this information to be communicated into making proteins. However, an error in reading this communication can cause protein function to be incorrect and eventually cause disease even as the cell incorporates a variety of corrective measures.Genetic information is conveyed by DNA for protein synthesis within cells. Misinterpretation can lead to faulty function and disease, despite cellular correction mechanisms.
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<div class="mw-heading mw-heading3"><h3 id="Central_dogma">Central dogma</h3></div>
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</style><div role="note" class="hatnote navigation-not-searchable">Main article: <a href="Central_dogma_of_molecular_biology" title="Central dogma of molecular biology">Central dogma of molecular biology</a></div>
<p>In 1956 <a href="Francis_Crick" title="Francis Crick">Francis Crick</a> described the flow of genetic information from <a href="DNA" title="DNA">DNA</a> to a specific amino acid arrangement for making a <a href="Protein" title="Protein">protein</a> as the central dogma.<sup id="cite_ref-MBoG_6th_2008_1-1" class="reference"><a href="#cite_note-MBoG_6th_2008-1"><span class="cite-bracket">[</span>1<span class="cite-bracket">]</span></a></sup> For a cell to properly function, proteins are required to be produced accurately for structural and for <a href="Catalytic" class="mw-redirect" title="Catalytic">catalytic</a> activities. An incorrectly made protein can have detrimental effects on <a href="Cell_(biology)" title="Cell (biology)">cell</a> viability and in most cases cause the higher <a href="Organism" title="Organism">organism</a> to become unhealthy by abnormal cellular functions. To ensure that the <a href="Genome" title="Genome">genome</a> successfully passes the information on, <a href="Proofreading" title="Proofreading">proofreading</a> mechanisms such as <a href="Exonuclease" title="Exonuclease">exonucleases</a> and <a href="Mismatch_repair" class="mw-redirect" title="Mismatch repair">mismatch repair</a> systems are incorporated in <a href="DNA_replication" title="DNA replication">DNA replication</a>.<sup id="cite_ref-MBoG_6th_2008_1-2" class="reference"><a href="#cite_note-MBoG_6th_2008-1"><span class="cite-bracket">[</span>1<span class="cite-bracket">]</span></a></sup>
</p>
<div class="mw-heading mw-heading3"><h3 id="Transcription_and_translation">Transcription and translation</h3></div>
<div role="note" class="hatnote navigation-not-searchable">Main articles: <a href="Transcription_(genetics)" class="mw-redirect" title="Transcription (genetics)">Transcription (genetics)</a> and <a href="Translation_(biology)" title="Translation (biology)">Translation (biology)</a></div>

<p>After DNA replication, the reading of a selected section of genetic information is accomplished by <a href="Transcription_(genetics)" class="mw-redirect" title="Transcription (genetics)">transcription</a>.<sup id="cite_ref-MBoG_6th_2008_1-3" class="reference"><a href="#cite_note-MBoG_6th_2008-1"><span class="cite-bracket">[</span>1<span class="cite-bracket">]</span></a></sup>
Nucleotides containing the genetic information are now on a single strand messenger template called <a href="MRNA" class="mw-redirect" title="MRNA">mRNA</a>. The mRNA is incorporated with a subunit of the <a href="Ribosome" title="Ribosome">ribosome</a> and interacts with an <a href="RRNA" class="mw-redirect" title="RRNA">rRNA</a>. The genetic information carried in the codons of the mRNA are now read (decoded) by anticodons of the tRNA. As each codon (triplet) is read, <a href="Amino_acids" class="mw-redirect" title="Amino acids">amino acids</a> are being joined until a <a href="Stop_codon" title="Stop codon">stop codon</a> (UAG, UGA or UAA) is reached. At this point the <a href="Polypeptide" class="mw-redirect" title="Polypeptide">polypeptide</a> (protein) has been synthesised and is released.<sup id="cite_ref-MBoG_6th_2008_1-4" class="reference"><a href="#cite_note-MBoG_6th_2008-1"><span class="cite-bracket">[</span>1<span class="cite-bracket">]</span></a></sup> For every 1000 amino acid incorporated into the protein, no more than one is incorrect. This fidelity of codon recognition, maintaining the importance of the proper reading frame, is accomplished by proper base pairing at the ribosome A site, <a href="Guanosine_triphosphate" title="Guanosine triphosphate">GTP</a> hydrolysis activity of <a href="EF-Tu" title="EF-Tu">EF-Tu</a> a form of kinetic stability, and a proofreading mechanism as EF-Tu is released.<sup id="cite_ref-MBoG_6th_2008_1-5" class="reference"><a href="#cite_note-MBoG_6th_2008-1"><span class="cite-bracket">[</span>1<span class="cite-bracket">]</span></a></sup>
</p><p>Frameshifting may also occur during <a href="Prophase" title="Prophase">prophase</a> translation, producing different proteins from overlapping open reading frames, such as the gag-pol-env <a href="Retroviral" class="mw-redirect" title="Retroviral">retroviral</a> proteins. This is fairly common in <a href="Viruses" class="mw-redirect" title="Viruses">viruses</a> and also occurs in <a href="Bacteria" title="Bacteria">bacteria</a> and <a href="Yeast" title="Yeast">yeast</a> (Farabaugh, 1996). <a href="Reverse_transcriptase" title="Reverse transcriptase">Reverse transcriptase</a>, as opposed to <a href="RNA_Polymerase_II" class="mw-redirect" title="RNA Polymerase II">RNA Polymerase II</a>, is thought to be a stronger cause of the occurrence of frameshift mutations. In experiments only 3–13% of all frameshift mutations occurred because of RNA Polymerase II. In <a href="Prokaryotes" class="mw-redirect" title="Prokaryotes">prokaryotes</a> the error rate inducing frameshift mutations is only somewhere in the range of .0001 and .00001.<sup id="cite_ref-rna_polymerase_II_5-0" class="reference"><a href="#cite_note-rna_polymerase_II-5"><span class="cite-bracket">[</span>5<span class="cite-bracket">]</span></a></sup>
</p><p>There are several biological processes that help to prevent frameshift mutations. Reverse mutations occur which change the mutated sequence back to the original <a href="Wild_type" title="Wild type">wild type</a> sequence. Another possibility for mutation correction is the use of a <a href="Suppressor_mutation" title="Suppressor mutation">suppressor mutation</a>. This offsets the effect of the original mutation by creating a secondary mutation, shifting the sequence to allow for the correct amino acids to be read. <a href="Guide_RNA" title="Guide RNA">Guide RNA</a> can also be used to insert or delete Uridine into the mRNA after transcription, this allows for the correct reading frame.<sup id="cite_ref-MBoG_6th_2008_1-6" class="reference"><a href="#cite_note-MBoG_6th_2008-1"><span class="cite-bracket">[</span>1<span class="cite-bracket">]</span></a></sup>
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<div class="mw-heading mw-heading3"><h3 id="Codon-triplet_importance">Codon-triplet importance</h3></div>
<div role="note" class="hatnote navigation-not-searchable">Main article: <a href="Genetic_code" title="Genetic code">Genetic code</a></div>

<p>A <a href="Codon" class="mw-redirect" title="Codon">codon</a> is a set of three <a href="Nucleotides" class="mw-redirect" title="Nucleotides">nucleotides</a>, a triplet that codes for a certain <a href="Amino_acid" title="Amino acid">amino acid</a>. The first codon establishes the reading frame, whereby a new codon begins. A protein's amino acid backbone <a href="Sequence" title="Sequence">sequence</a> is defined by contiguous triplets.<sup id="cite_ref-Cox08_6-0" class="reference"><a href="#cite_note-Cox08-6"><span class="cite-bracket">[</span>6<span class="cite-bracket">]</span></a></sup> Codons are key to translation of genetic information for the synthesis of proteins. The reading frame is set when translating the mRNA begins and is maintained as it reads one triplet to the next. The reading of the genetic code is subject to three rules the monitor codons in mRNA. First, codons are read in a 5' to 3' direction. Second, codons are nonoverlapping and the message has no gaps. The last rule, as stated above, that the message is translated in a fixed reading frame.<sup id="cite_ref-MBoG_6th_2008_1-7" class="reference"><a href="#cite_note-MBoG_6th_2008-1"><span class="cite-bracket">[</span>1<span class="cite-bracket">]</span></a></sup>
</p>

<div class="mw-heading mw-heading2"><h2 id="Mechanism">Mechanism</h2></div>
<p>Frameshift mutations can occur randomly or be caused by an external stimulus. The detection of frameshift mutations can occur via several different methods. Frameshifts are just one type of mutation that can lead to incomplete or incorrect proteins, but they account for a significant percentage of errors in DNA. In an unaltered gene, codons (triplets of nucleotides) are sequentially interpreted, with each codon encoding a specific amino acid. This is known as the standard reading frame. However, in cases of frameshift mutations, an extra nucleotide (or more) is inserted into the DNA sequence, disrupting the typical reading frame and causing a shift in the sequence.
</p><p>This insertion prompts a shift in the reading frame due to the triplet nature of the genetic code. For instance, the addition of an extra "A" leads to a sequence shift, triggering the reading of an entirely different set of codons. This deviation in genetic information causes the ribosome, which reads the mRNA for protein synthesis, to misinterpret the genetic data. Consequently, an entirely different series of amino acids is generated, resulting in the generation of an altered protein sequence. In most instances, the new reading frame results in an early encounter with a stop codon, leading to the formation of a shortened and usually inactive protein. This form of mutation is termed an early stop codon or a nonsense mutation.
</p>
<div class="mw-heading mw-heading3"><h3 id="Genetic_or_environmental">Genetic or environmental</h3></div>
<div role="note" class="hatnote navigation-not-searchable">Main article: <a href="Mutation" title="Mutation">Mutation</a></div>
<p>This is a genetic mutation at the level of nucleotide bases. Why and how frameshift mutations occur are continually being sought after. An environmental study, specifically the production of <a href="UV" class="mw-redirect" title="UV">UV</a>-induced frameshift mutations by DNA polymerases deficient in 3′ → 5′ exonuclease activity was done. The normal sequence 5′ GTC GTT TTA CAA 3′ was changed to GTC GTT T TTA CAA (MIDT) of GTC GTT C TTA CAA (MIDC) to study frameshifts. <a href="E._coli" class="mw-redirect" title="E. coli">E. coli</a> pol I Kf and T7 DNA polymerase mutant <a href="Enzymes" class="mw-redirect" title="Enzymes">enzymes</a> devoid of 3′ → 5′ exonuclease activity produce UV-induced revertants at higher frequency than did their <a href="Exonuclease" title="Exonuclease">exonuclease</a> proficient counterparts. The data indicates that loss of proofreading activity increases the frequency of UV-induced frameshifts.<sup id="cite_ref-7" class="reference"><a href="#cite_note-7"><span class="cite-bracket">[</span>7<span class="cite-bracket">]</span></a></sup>
</p>
<div class="mw-heading mw-heading3"><h3 id="Detection">Detection</h3></div>
<div class="mw-heading mw-heading4"><h4 id="Fluorescence">Fluorescence</h4></div>
<p>The effects of neighboring bases and secondary structure to detect the frequency of frameshift mutations has been investigated in depth using <a href="Fluorescence" title="Fluorescence">fluorescence</a>. Fluorescently tagged DNA, by means of base analogues, permits one to study the local changes of a DNA sequence.<sup id="cite_ref-8" class="reference"><a href="#cite_note-8"><span class="cite-bracket">[</span>8<span class="cite-bracket">]</span></a></sup> Studies on the effects of the length of the primer strand reveal that an equilibrium mixture of four hybridization conformations was observed when template bases looped-out as a bulge, i.e. a structure flanked on both sides by duplex DNA. In contrast, a double-loop structure with an unusual unstacked DNA conformation at its downstream edge was observed when the extruded bases were positioned at the primer–template junction, showing that misalignments can be modified by neighboring DNA secondary structure.<sup id="cite_ref-9" class="reference"><a href="#cite_note-9"><span class="cite-bracket">[</span>9<span class="cite-bracket">]</span></a></sup>
</p>
<div class="mw-heading mw-heading4"><h4 id="Sequencing">Sequencing</h4></div>

<p><a href="Sanger_sequencing" title="Sanger sequencing">Sanger sequencing</a> and <a href="Pyrosequencing" title="Pyrosequencing">pyrosequencing</a> are two methods that have been used to detect frameshift mutations, however, it is likely that data generated will not be of the highest quality. Even still, 1.96 million <a href="Indel" title="Indel">indels</a> have been identified through Sanger sequencing that do not overlap with other databases. When a frameshift mutation is observed it is compared against the Human Genome Mutation Database (HGMD) to determine if the mutation has a damaging effect. This is done by looking at four features. First, the ratio between the affected and conserved DNA, second the location of the mutation relative to the transcript, third the ratio of conserved and affected amino acids and finally the distance of the indel to the end of the <a href="Exon" title="Exon">exon</a>.<sup id="cite_ref-predicting_frameshifts_10-0" class="reference"><a href="#cite_note-predicting_frameshifts-10"><span class="cite-bracket">[</span>10<span class="cite-bracket">]</span></a></sup>
</p><p><a href="Massively_parallel_sequencing" class="mw-redirect" title="Massively parallel sequencing">Massively Parallel Sequencing</a> is a newer method that can be used to detect mutations. Using this method, up to 17 gigabases can be sequenced at once, as opposed to limited ranges for <a href="Sanger_sequencing" title="Sanger sequencing">Sanger sequencing</a> of only about 1 kilobase. Several technologies are available to perform this test and it is being looked at to be used in clinical applications.<sup id="cite_ref-TuckerMarra2009_11-0" class="reference"><a href="#cite_note-TuckerMarra2009-11"><span class="cite-bracket">[</span>11<span class="cite-bracket">]</span></a></sup> When testing for different carcinomas, current methods only allow for looking at one gene at a time. Massively Parallel Sequencing can test for a variety of cancer causing mutations at once as opposed to several specific tests.<sup id="cite_ref-WalshCasadei2011_12-0" class="reference"><a href="#cite_note-WalshCasadei2011-12"><span class="cite-bracket">[</span>12<span class="cite-bracket">]</span></a></sup> An experiment to determine the accuracy of this newer sequencing method tested for 21 genes and had no false positive calls for frameshift mutations.<sup id="cite_ref-WalshLee2010_13-0" class="reference"><a href="#cite_note-WalshLee2010-13"><span class="cite-bracket">[</span>13<span class="cite-bracket">]</span></a></sup>
</p>
<div class="mw-heading mw-heading4"><h4 id="Diagnosis">Diagnosis</h4></div>
<p>A US <a href="Patent" title="Patent">patent</a> (5,958,684) in 1999 by Leeuwen, details the methods and reagents for diagnosis of diseases caused by or associated with a gene having a somatic mutation giving rise to a frameshift mutation. The methods include providing a tissue or fluid sample and conducting gene analysis for frameshift mutation or a protein from this type of mutation. The nucleotide sequence of the suspected gene is provided from published gene sequences or from <a href="Cloning" title="Cloning">cloning</a> and sequencing of the suspect gene. The amino acid sequence encoded by the gene is then predicted.<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> NA Sequencing: Sanger sequencing or Next-Generation Sequencing (NGS) can be used to directly sequence the DNA and identify insertions or deletions.Polymerase Chain Reaction (PCR): PCR can be used to amplify the specific region containing the mutation for subsequent analysis.Multiplex Ligation-dependent Probe Amplification (MLPA): MLPA is a technique used to detect copy number variations and small insertions or deletions.Comparative Genomic Hybridization (CGH): CGH is used to detect chromosomal imbalances, which may include large insertions or deletions.
</p>
<div class="mw-heading mw-heading4"><h4 id="Frequency">Frequency</h4></div>
<p>Despite the rules that govern the genetic code and the various mechanisms present in a cell to ensure the correct transfer of genetic information during the process of DNA replication as well as during translation, mutations do occur; frameshift mutation is not the only type. There are at least two other types of recognized point mutations, specifically <a href="Missense_mutation" title="Missense mutation">missense mutation</a> and <a href="Nonsense_mutation" title="Nonsense mutation">nonsense mutation</a>.<sup id="cite_ref-MBoG_6th_2008_1-8" class="reference"><a href="#cite_note-MBoG_6th_2008-1"><span class="cite-bracket">[</span>1<span class="cite-bracket">]</span></a></sup> A frameshift mutation can drastically change the coding capacity (genetic information) of the message.<sup id="cite_ref-MBoG_6th_2008_1-9" class="reference"><a href="#cite_note-MBoG_6th_2008-1"><span class="cite-bracket">[</span>1<span class="cite-bracket">]</span></a></sup> Small insertions or deletions (those less than 20 base pairs) make up 24% of mutations that manifest in currently recognized genetic disease.<sup id="cite_ref-predicting_frameshifts_10-1" class="reference"><a href="#cite_note-predicting_frameshifts-10"><span class="cite-bracket">[</span>10<span class="cite-bracket">]</span></a></sup>
</p><p>Frameshift mutations are found to be more common in repeat regions of DNA. A reason for this is because of slipping of the polymerase enzyme in repeat regions, allowing for mutations to enter the <a href="Sequence" title="Sequence">sequence</a>.<sup id="cite_ref-editing_frameshift_mutation_15-0" class="reference"><a href="#cite_note-editing_frameshift_mutation-15"><span class="cite-bracket">[</span>15<span class="cite-bracket">]</span></a></sup> <a href="Experiment" title="Experiment">Experiments</a> can be run to determine the frequency of the frameshift mutation by adding or removing a pre-set number of nucleotides. Experiments have been run by adding four basepairs, called the +4 experiments, but a team from <a href="Emory_University" title="Emory University">Emory University</a> looked at the difference in frequency of the mutation by both adding and deleting a base pair. It was shown that there was no difference in the frequency between the addition and deletion of a base pair. There is however, a difference in the result of the protein.<sup id="cite_ref-editing_frameshift_mutation_15-1" class="reference"><a href="#cite_note-editing_frameshift_mutation-15"><span class="cite-bracket">[</span>15<span class="cite-bracket">]</span></a></sup>
</p><p><a href="Huntington's_disease" title="Huntington's disease">Huntington's disease</a> is one of the nine codon reiteration disorders caused by polyglutamine expansion mutations that include spino-cerebellar ataxia (SCA) 1, 2, 6, 7 and 3, spinobulbar muscular atrophy and dentatorubal-pallidoluysianatrophy. There may be a link between diseases caused by polyglutamine and polyalanine expansion mutations, as frame shifting of the original SCA3 gene product encoding CAG/polyglutamines to GCA/polyalanines. Ribosomal slippage during translation of the SCA3 protein has been proposed as the mechanism resulting in shifting from the polyglutamine to the polyalanine-encoding frame. A dinucleotide deletion or single nucleotide insertion within the polyglutamine tract of huntingtin exon 1 would shift the CAG, polyglutamineen coding frame by +1 (+1 frame shift) to the GCA, polyalanine-encoding frame and introduce a novel epitope to the C terminus of Htt exon 1 (APAAAPAATRPGCG).<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>
<div class="mw-heading mw-heading2"><h2 id="Diseases">Diseases</h2></div>
<p>Several diseases have frameshift mutations as at least part of the cause. Knowing prevalent mutations can also aid in the diagnosis of the disease. Currently there are attempts to use frameshift mutations beneficially in the treatment of diseases, changing the reading frame of the amino acids.
</p>


<div class="mw-heading mw-heading3"><h3 id="Cancer">Cancer</h3></div>
<div role="note" class="hatnote navigation-not-searchable">Main article: <a href="Cancer" title="Cancer">cancer</a></div>
<p>Frameshift mutations are known to be a factor in <a href="Colorectal" class="mw-redirect" title="Colorectal">colorectal</a> cancer as well as other <a href="Cancers" class="mw-redirect" title="Cancers">cancers</a> with <a href="Microsatellite_instability" title="Microsatellite instability">microsatellite instability</a>. As stated previously, frameshift mutations are more likely to occur in a region of repeat sequence. When DNA mismatch repair does not fix the addition or deletion of bases, these mutations are more likely to be pathogenic. This may be in part because the tumor is not told to stop growing. Experiments in yeast and bacteria help to show characteristics of microsatellites that may contribute to defective DNA mismatch repair. These include the length of the <a href="Microsatellite" title="Microsatellite">microsatellite</a>, the makeup of the genetic material and how pure the repeats are. Based on experimental results longer microsatellites have a higher rate of frameshift mutations. The flanking DNA can also contribute to frameshift mutations.<sup id="cite_ref-microsatellite_instability_17-0" class="reference"><a href="#cite_note-microsatellite_instability-17"><span class="cite-bracket">[</span>17<span class="cite-bracket">]</span></a></sup> In prostate cancer a frameshift mutation changes the <a href="Open_reading_frame" title="Open reading frame">open reading frame</a> (ORF) and prevents <a href="Apoptosis" title="Apoptosis">apoptosis</a> from occurring. This leads to an unregulated growth of the <a href="Tumor" class="mw-redirect" title="Tumor">tumor</a>. While there are environmental factors that contribute to the progression of <a href="Prostate_cancer" title="Prostate cancer">prostate cancer</a>, there is also a genetic component. During testing of coding regions to identify mutations, 116 genetic variants were discovered, including 61 frameshift mutations.<sup id="cite_ref-somatic_mutations_in_prostate_cancer_18-0" class="reference"><a href="#cite_note-somatic_mutations_in_prostate_cancer-18"><span class="cite-bracket">[</span>18<span class="cite-bracket">]</span></a></sup> There are over 500 mutations on chromosome 17 that seem to play a role in the development of breast and ovarian cancer in the BRCA1 gene, many of which are frameshift.<sup id="cite_ref-cancer_genomics_19-0" class="reference"><a href="#cite_note-cancer_genomics-19"><span class="cite-bracket">[</span>19<span class="cite-bracket">]</span></a></sup>
</p>
<div class="mw-heading mw-heading3"><h3 id="Crohn's_disease">Crohn's disease</h3></div>
<p><a href="Crohn's_disease" title="Crohn's disease">Crohn's disease</a> has an association with the NOD2 gene. The mutation is an insertion of a <a href="Cytosine" title="Cytosine">Cytosine</a> at position 3020. This leads to a premature stop codon, shortening the protein that is supposed to be transcribed. When the protein is able to form normally, it responds to bacterial liposaccharides, where the 3020insC mutation prevents the protein from being responsive.<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>
</p>
<div class="mw-heading mw-heading3"><h3 id="Cystic_fibrosis">Cystic fibrosis</h3></div>
<p><a href="Cystic_fibrosis" title="Cystic fibrosis">Cystic fibrosis</a> (CF) is a disease based on mutations in the CF <a href="Transmembrane" class="mw-redirect" title="Transmembrane">transmembrane</a> conductance regulator (CFTR) gene. There are over 1500 mutations identified, but not all cause the disease.<sup id="cite_ref-guidelines_for_CF_21-0" class="reference"><a href="#cite_note-guidelines_for_CF-21"><span class="cite-bracket">[</span>21<span class="cite-bracket">]</span></a></sup> Most cases of cystic fibrosis are a result of the ∆F508 mutation, which deletes the entire amino acid. Two frameshift mutations are of interest in diagnosing CF, CF1213delT and CF1154-insTC. Both of these mutations commonly occur in tandem with at least one other mutation. They both lead to a small decrease in the function of the <a href="Lungs" class="mw-redirect" title="Lungs">lungs</a> and occur in about 1% of patients tested. These mutations were identified through Sanger sequencing.<sup id="cite_ref-frameshift_mutations_in_CF_22-0" class="reference"><a href="#cite_note-frameshift_mutations_in_CF-22"><span class="cite-bracket">[</span>22<span class="cite-bracket">]</span></a></sup>
</p>
<div class="mw-heading mw-heading3"><h3 id="HIV">HIV</h3></div>
<div role="note" class="hatnote navigation-not-searchable">Main article: <a href="HIV/AIDS" title="HIV/AIDS">HIV/AIDS</a></div>
<p><a href="CCR5" title="CCR5">CCR5</a> is one of the cell entry co-factors associated with HIV, most frequently involved with nonsyncytium-inducing strains, is most apparent in HIV patients as opposed to AIDS patients. A 32 base pair deletion in CCR5 has been identified as a mutation that negates the likelihood of an HIV infection. This region on the open reading frame <a href="Open_reading_frame" title="Open reading frame">ORF</a> contains a frameshift mutation leading to a premature stop codon. This leads to the loss of the HIV-coreceptor function in vitro. CCR5-1 is considered the wild type and CCR5-2 is considered to be the mutant allele. Those with a heterozygous mutation for the CCR5 were less susceptible to the development of HIV. In a study, despite high exposure to the HIV virus, there was no one homozygous for the CCR5 mutation that tested positive for HIV.<sup id="cite_ref-HIV_resistance_3-1" class="reference"><a href="#cite_note-HIV_resistance-3"><span class="cite-bracket">[</span>3<span class="cite-bracket">]</span></a></sup>
</p>
<div class="mw-heading mw-heading3"><h3 id="Tay–Sachs_disease">Tay–Sachs disease</h3></div>
<p><a href="Tay%E2%80%93Sachs_disease" title="Tay–Sachs disease">Tay–Sachs disease</a> is a fatal disease affecting the central nervous system. It is most frequently found in infants and small children. Disease progression begins in the <a href="Womb" class="mw-redirect" title="Womb">womb</a> but symptoms do not appear until approximately 6 months of age. There is no cure for the disease.<sup id="cite_ref-tay_sachs_23-0" class="reference"><a href="#cite_note-tay_sachs-23"><span class="cite-bracket">[</span>23<span class="cite-bracket">]</span></a></sup> Mutations in the β-hexosaminidase A (Hex A) gene are known to affect the onset of Tay-Sachs, with 78 mutations of different types being described, 67 of which are known to cause disease. Most of the mutations observed (65/78) are single base substitutions or SNPs, 11 deletions, 1 large and 10 small, and 2 insertions. 8 of the observed mutations are frameshift, 6 deletions and 2 insertions. A 4 base pair insertion in exon 11 is observed in 80% of Tay-Sachs disease presence in the <a href="Ashkenazi" class="mw-redirect" title="Ashkenazi">Ashkenazi</a> Jewish population. The frameshift mutations lead to an early stop codon which is known to play a role in the disease in infants. Delayed onset disease appears to be caused by 4 different mutations, one being a 3 base pair deletion.<sup id="cite_ref-Tay-Sachs_mutations_24-0" class="reference"><a href="#cite_note-Tay-Sachs_mutations-24"><span class="cite-bracket">[</span>24<span class="cite-bracket">]</span></a></sup>
</p>
<div class="mw-heading mw-heading3"><h3 id="Smith–Magenis_syndrome">Smith–Magenis syndrome</h3></div>
<p><a href="Smith%E2%80%93Magenis_syndrome" title="Smith–Magenis syndrome">Smith–Magenis syndrome</a> (SMS) is a complex <a href="Syndrome" title="Syndrome">syndrome</a> involving intellectual disabilities, sleep disturbance, behavioural problems, and a variety of craniofacial, skeletal, and visceral anomalies. The majority of SMS cases harbor an ~3.5 Mb common deletion that encompasses the retinoic acid induced-1 (<i><a href="RAI1" title="RAI1">RAI1</a></i>) gene. Other cases illustrate variability in the SMS <a href="Phenotype" title="Phenotype">phenotype</a> not previously shown for RAI1 mutation, including hearing loss, self-abusive behaviours, and mild global delays. Sequencing of RAI1 revealed mutation of a heptamericC-tract (CCCCCCC) in exon 3 resulting in frameshift mutations. Of the seven reported frameshift mutations occurring in poly C-tracts in RAI1, four cases (~57%) occur at this heptameric C-tract. The results indicate that this heptameric C-tract is a preferential <a href="Recombination_hotspot" title="Recombination hotspot">recombination hotspot</a> insertion/deletions (SNindels) and therefore a primary target for analysis in patients suspected for mutations in RAI1.<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>
</p>
<div class="mw-heading mw-heading3"><h3 id="Hypertrophic_cardiomyopathy">Hypertrophic cardiomyopathy</h3></div>
<p><a href="Hypertrophic_cardiomyopathy" title="Hypertrophic cardiomyopathy">Hypertrophic cardiomyopathy</a> is the most common cause of <a href="Sudden_cardiac_death" class="mw-redirect" title="Sudden cardiac death">sudden death</a> in young people, including trained athletes, and is caused by mutations in genes encoding proteins of the cardiac sarcomere. Mutations in the Troponin C gene (<i><a href="TNNC1" class="mw-redirect" title="TNNC1">TNNC1</a></i>) are a rare genetic cause of hypertrophic cardiomyopathy. A recent study has indicated that a frameshift mutation (c.363dupG or p.Gln122AlafsX30) in Troponin C was the cause of hypertrophic cardiomyopathy (and sudden cardiac death) in a 19-year-old male.<sup id="cite_ref-pmid21262074_26-0" class="reference"><a href="#cite_note-pmid21262074-26"><span class="cite-bracket">[</span>26<span class="cite-bracket">]</span></a></sup>
</p>
<div class="mw-heading mw-heading3"><h3 id="Cures">Cures</h3></div>
<p>Finding a cure for the diseases caused by frameshift mutations is rare. Research into this is ongoing. One example is a <a href="Primary_immunodeficiency" title="Primary immunodeficiency">primary immunodeficiency</a> (PID), an inherited condition which can lead to an increase in infections. There are 120 genes and 150 mutations that play a role in primary immunodeficiencies. The standard treatment is currently <b>gene therapy</b>, but this is a highly risky treatment and can often lead to other diseases, such as leukemia. Gene therapy procedures include modifying the zinc fringer nuclease fusion protein, cleaving both ends of the mutation, which in turn removes it from the sequence. Antisense-oligonucleotide mediated <b>exon skipping</b> is another possibility for Duchenne <a href="Muscular_dystrophy" title="Muscular dystrophy">muscular dystrophy</a>. This process allows for passing over the mutation so that the rest of the sequence remains in frame and the function of the protein stays intact. This, however, does not cure the disease, just treats symptoms, and is only practical in structural proteins or other repetitive genes. A third form of repair is <b>revertant mosaicism</b>, which is naturally occurring by creating a reverse mutation or a mutation at a second site that corrects the reading frame. This reversion may happen by intragenic <a href="Genetic_recombination" title="Genetic recombination">recombination</a>, <a href="Mitotic" class="mw-redirect" title="Mitotic">mitotic</a> gene conversion, second site DNA slipping or site-specific reversion. This is possible in several diseases, such as <a href="X-linked_severe_combined_immunodeficiency" title="X-linked severe combined immunodeficiency">X-linked severe combined immunodeficiency</a> (SCID), <a href="Wiskott%E2%80%93Aldrich_syndrome" title="Wiskott–Aldrich syndrome">Wiskott–Aldrich syndrome</a>, and <a href="Bloom_syndrome" title="Bloom syndrome">Bloom syndrome</a>. There are no drugs or other pharmacogenomic methods that help with PIDs.<sup id="cite_ref-PID_treatments_27-0" class="reference"><a href="#cite_note-PID_treatments-27"><span class="cite-bracket">[</span>27<span class="cite-bracket">]</span></a></sup>
</p><p>A European patent (EP1369126A1) in 2003 by Bork records a method used for prevention of cancers and for the curative treatment of cancers and precancers such as DNA-mismatch repair deficient (MMR) sporadic tumours and HNPCC associated tumours. The idea is to use <b>immunotherapy</b> with combinatorial mixtures of tumour-specific frameshift mutation-derived peptides to elicit a cytotoxic T-cell response specifically directed against tumour cells.<sup id="cite_ref-28" class="reference"><a href="#cite_note-28"><span class="cite-bracket">[</span>28<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="Translational_frameshift" class="mw-redirect" title="Translational frameshift">Translational frameshift</a></li>
<li><a href="Mutation" title="Mutation">Mutation</a></li>
<li><a href="Transcription_(genetics)" class="mw-redirect" title="Transcription (genetics)">Transcription (genetics)</a></li>
<li><a href="Translation_(biology)" title="Translation (biology)">Translation (biology)</a></li>
<li><a href="Codon" class="mw-redirect" title="Codon">codon</a></li>
<li><a href="Protein" title="Protein">protein</a></li>
<li><a href="Reading_frame" title="Reading frame">reading frame</a></li>
<li><a href="Point_mutation" title="Point mutation">point mutation</a></li>
<li><a href="Crohn's_disease" title="Crohn's disease">Crohn's disease</a></li>
<li><a href="Tay%E2%80%93Sachs_disease" title="Tay–Sachs disease">Tay–Sachs disease</a></li></ul>
<div class="mw-heading mw-heading2"><h2 id="References">References</h2></div>
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<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="CITEREFTruongDudding,_TracyBlanchard,_Christopher_L.Elsea,_Sarah_H2010" class="citation journal cs1">Truong, Hoa T; Dudding, Tracy; Blanchard, Christopher L.; Elsea, Sarah H (2010). <a rel="nofollow" class="external text" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2964533">"Frameshift mutation hotspot identified in Smith-Magenis syndrome: case report and review of literature"</a>. <i>BMC Medical Genetics</i>. <b>11</b> (1): 142. <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/10.1186%2F1471-2350-11-142">10.1186/1471-2350-11-142</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/PMC2964533">2964533</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/20932317">20932317</a>.</cite></span>
</li>
<li id="cite_note-pmid21262074-26"><span class="mw-cite-backlink"><b><a href="#cite_ref-pmid21262074_26-0">^</a></b></span> <span class="reference-text"><cite id="CITEREFChungKitnerMaron2011" class="citation journal cs1">Chung WK, Kitner C, Maron BJ (June 2011). "Novel frameshift mutation in Troponin C ( TNNC1) associated with hypertrophic cardiomyopathy and sudden death". <i>Cardiol Young</i>. <b>21</b> (3): <span class="nowrap">345–</span>8. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<a rel="nofollow" class="external text" href="https://doi.org/10.1017%2FS1047951110001927">10.1017/S1047951110001927</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/21262074">21262074</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:46682245">46682245</a>.</cite></span>
</li>
<li id="cite_note-PID_treatments-27"><span class="mw-cite-backlink"><b><a href="#cite_ref-PID_treatments_27-0">^</a></b></span> <span class="reference-text"><cite id="CITEREFHuGatti,_Richard_A2008" class="citation journal cs1">Hu, Hailiang; Gatti, Richard A (2008). <a rel="nofollow" class="external text" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2686128">"New approaches to treatment of primary immunodeficiencies: fixing mutations with chemicals"</a>. <i>Current Opinion in Allergy and Clinical Immunology</i>. <b>8</b> (6): <span class="nowrap">540–</span>6. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<a rel="nofollow" class="external text" href="https://doi.org/10.1097%2FACI.0b013e328314b63b">10.1097/ACI.0b013e328314b63b</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/PMC2686128">2686128</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/18978469">18978469</a>.</cite></span>
</li>
<li id="cite_note-28"><span class="mw-cite-backlink"><b><a href="#cite_ref-28">^</a></b></span> <span class="reference-text">European Patent <a rel="nofollow" class="external autonumber" href="https://patents.google.com/patent/EP1369126A1/en">[1]</a> (December 10, 2003) "Use of coding microsatellite region frameshift mutation-derived peptides for treating cancer" by Bork <i>et al</i></span>
</li>
</ol></div>
<div class="mw-heading mw-heading2"><h2 id="Further_reading">Further reading</h2></div>
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<ul><li><cite id="CITEREFFarabaugh_PJ1996" class="citation journal cs1">Farabaugh PJ (1996). <a rel="nofollow" class="external text" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC239420">"Programmed translational frameshifting"</a>. <i>Annu. Rev. Genet</i>. <b>30</b> (1): <span class="nowrap">507–</span>28. <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.genet.30.1.507">10.1146/annurev.genet.30.1.507</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/PMC239420">239420</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/8982463">8982463</a>.</cite></li>
<li><cite id="CITEREFLewis,_Ricki2005" class="citation book cs1">Lewis, Ricki (2005). <i>Human Genetics: Concepts and Applications</i> (6th&nbsp;ed.). Boston MA: McGraw Hill. pp.&nbsp;<span class="nowrap">227–</span>8. <a href="ISBN_(identifier)" class="mw-redirect" title="ISBN (identifier)">ISBN</a>&nbsp;<bdi>978-0-07-111156-0</bdi>.</cite></li>
<li><cite class="citation web cs1"><a rel="nofollow" class="external text" href="http://www.talkorigins.org/origins/postmonth/apr04.html">"Nylonase Enzymes"</a>. 20 April 2004<span class="reference-accessdate">. Retrieved <span class="nowrap">2 June</span> 2009</span>.</cite></li></ul>
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<div class="mw-heading mw-heading2"><h2 id="External_links">External links</h2></div>
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<div class="side-box-text plainlist">Wikimedia Commons has media related to <span style="font-weight: bold; font-style: italic;"><a href="https://commons.wikimedia.org/wiki/Category:Frameshift_mutation" class="extiw external" title="commons:Category:Frameshift mutation">Frameshift mutation</a></span>.</div></div>
</div>
<ul><li><a rel="nofollow" class="external text" href="https://meshb.nlm.nih.gov/record/ui?name=Frameshift+Mutation">Frameshift+Mutation</a> at the U.S. National Library of Medicine <a href="Medical_Subject_Headings" title="Medical Subject Headings">Medical Subject Headings</a> (MeSH)</li>
<li><a rel="nofollow" class="external text" href="https://www.ncbi.nlm.nih.gov/projects/SNP/">NCBI dbSNP database</a> — "a central repository for both single base nucleotide substitutions and short deletion and insertion polymorphisms"</li>
<li><a rel="nofollow" class="external text" href="http://www.ebi.ac.uk/Tools/Wise2/index.htm">Wise2</a> - aligns a <a href="Protein" title="Protein">protein</a> against a DNA sequence allowing <a href="Frameshift" class="mw-redirect" title="Frameshift">frameshifts</a> and <a href="Intron" title="Intron">introns</a></li>
<li><a rel="nofollow" class="external text" href="http://fasta.bioch.virginia.edu/fasta_www2/fasta_www.cgi?rm=select&amp;pgm=fy">FastY</a> - compare a DNA sequence to a protein sequence database, allowing gaps and <a href="Frameshift" class="mw-redirect" title="Frameshift">frameshifts</a></li>
<li><a rel="nofollow" class="external text" href="http://bioinfo.lifl.fr/path/">Path</a> <a rel="nofollow" class="external text" href="https://web.archive.org/web/20110719124547/http://bioinfo.lifl.fr/path/">Archived</a> 2011-07-19 at the <a href="Wayback_Machine" title="Wayback Machine">Wayback Machine</a> - tool that compares two <a href="Frameshift" class="mw-redirect" title="Frameshift">frameshift</a> proteins (back-<a href="Translation_(genetics)" class="mw-redirect" title="Translation (genetics)">translation</a> principle)</li>
<li><a rel="nofollow" class="external text" href="http://www.hgmd.cf.ac.uk/ac/index.php">HGMD</a> - Human Genome Mutation Database</li></ul>
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</style><div id="Mutation108" style="font-size:114%;margin:0 4em"><a href="Mutation" title="Mutation">Mutation</a></div></th></tr><tr><th scope="row" class="navbox-group" style="width:1%">Mechanisms of mutation</th><td class="navbox-list-with-group navbox-list navbox-odd hlist" style="width:100%;padding:0"><div style="padding:0 0.25em">
<ul><li><a href="Insertion_(genetics)" title="Insertion (genetics)">Insertion</a></li>
<li><a href="Deletion_(genetics)" title="Deletion (genetics)">Deletion</a></li>
<li>Substitution
<ul><li><a href="Transversion" title="Transversion">Transversion</a></li>
<li><a href="Transition_(genetics)" title="Transition (genetics)">Transition</a></li></ul></li></ul>
</div></td></tr><tr><th scope="row" class="navbox-group" style="width:1%">Mutation with respect to structure</th><td class="navbox-list-with-group navbox-list navbox-odd hlist" style="width:100%;padding:0"><div style="padding:0 0.25em"></div><table class="nowraplinks navbox-subgroup" style="border-spacing:0"><tbody><tr><th scope="row" class="navbox-group" style="width:1%"><a href="Point_mutation" title="Point mutation">Point mutation</a></th><td class="navbox-list-with-group navbox-list navbox-even" style="width:100%;padding:0"><div style="padding:0 0.25em">
<ul><li><a href="Nonsense_mutation" title="Nonsense mutation">Nonsense mutation</a></li>
<li><a href="Missense_mutation" title="Missense mutation">Missense mutation</a></li>
<li><a href="Conservative_mutation" class="mw-redirect" title="Conservative mutation">Conservative mutation</a></li>
<li><a href="Silent_mutation" title="Silent mutation">Silent mutation</a></li>

<li><a href="Dynamic_mutation" title="Dynamic mutation">Dynamic mutation</a></li></ul>
</div></td></tr><tr><th scope="row" class="navbox-group" style="width:1%">Large-scale mutation</th><td class="navbox-list-with-group navbox-list navbox-odd" style="width:100%;padding:0"><div style="padding:0 0.25em">
<ul><li><a href="Chromosomal_translocation" title="Chromosomal translocation">Chromosomal translocations</a></li>
<li><a href="Chromosomal_inversion" title="Chromosomal inversion">Chromosomal inversions</a></li></ul>
</div></td></tr></tbody></table><div></div></td></tr><tr><th scope="row" class="navbox-group" style="width:1%">Mutation with respect to overall fitness</th><td class="navbox-list-with-group navbox-list navbox-even hlist" style="width:100%;padding:0"><div style="padding:0 0.25em">
<ul><li><a href="Mutation#By_effect_on_fitness" title="Mutation">Deleterious mutation</a></li>
<li><a href="Mutation#By_effect_on_fitness" title="Mutation">Advantageous mutation</a></li>
<li><a href="Neutral_mutation" title="Neutral mutation">Neutral mutation</a></li>
<li><a href="Mutation#By_effect_on_fitness" title="Mutation">Nearly neutral mutation</a></li>
<li><a href="Synonymous_substitution" title="Synonymous substitution">Synonymous mutation</a></li>
<li><a href="Nonsynonymous_substitution" title="Nonsynonymous substitution">Nonsynonymous mutation</a></li></ul>
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