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首页> 外文期刊>PLoS Genetics >Dominant Mutations in S. cerevisiae PMS1 Identify the Mlh1-Pms1 Endonuclease Active Site and an Exonuclease 1-Independent Mismatch Repair Pathway
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Dominant Mutations in S. cerevisiae PMS1 Identify the Mlh1-Pms1 Endonuclease Active Site and an Exonuclease 1-Independent Mismatch Repair Pathway

机译: S中的显性突变。酿酒酵母PMS1 识别Mlh1-Pms1核酸内切酶活性位点和独立于核酸外切酶1的错配修复途径

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Lynch syndrome (hereditary nonpolypsis colorectal cancer or HNPCC) is a common cancer predisposition syndrome. Predisposition to cancer in this syndrome results from increased accumulation of mutations due to defective mismatch repair (MMR) caused by a mutation in one of the mismatch repair genes MLH1 , MSH2 , MSH6 or PMS2/scPMS1 . To better understand the function of Mlh1-Pms1 in MMR, we used Saccharomyces cerevisiae to identify six pms1 mutations ( pms1-G683E , pms1-C817R , pms1-C848S , pms1-H850R , pms1-H703A and pms1-E707A ) that were weakly dominant in wild-type cells, which surprisingly caused a strong MMR defect when present on low copy plasmids in an exo1Δ mutant. Molecular modeling showed these mutations caused amino acid substitutions in the metal coordination pocket of the Pms1 endonuclease active site and biochemical studies showed that they inactivated the endonuclease activity. This model of Mlh1-Pms1 suggested that the Mlh1-FERC motif contributes to the endonuclease active site. Consistent with this, the mlh1-E767stp mutation caused both MMR and endonuclease defects similar to those caused by the dominant pms1 mutations whereas mutations affecting the predicted metal coordinating residue Mlh1-C769 had no effect. These studies establish that the Mlh1-Pms1 endonuclease is required for MMR in a previously uncharacterized Exo1-independent MMR pathway. Author Summary Lynch syndrome (hereditary nonpolypsis colorectal cancer or HNPCC) is a common cancer predisposition syndrome. Predisposition to cancer in this syndrome results from increased accumulation of mutations due to defective mismatch repair (MMR) caused by a mutation in one of the mismatch repair genes MLH1 , MSH2 , MSH6 or PMS2/scPMS1 . In addition to these genes, various DNA replication factors and the excision factor EXO1 function in the repair of damaged DNA by the MMR pathway. Although EXO1 is considered to be the major repair nuclease functioning in mismatch repair, the relatively low mutation rates caused by an exo1 deletion suggest otherwise. Here we used genetics, microscopy and protein biochemistry to analyze the model organism Saccharomyces cerevisiae to further characterize a poorly understood mismatch repair pathway that functions in the absence of EXO1 that is highly dependent on the Mlh1-Pms1 complex. Surprisingly, we found that the highly conserved metal binding site that is critical for the endonuclease activity of the Mlh1-Pms1 heterodimer is required for MMR in the absence of Exo1 to a much greater extent than in the presence of Exo1. Thus, this work establishes that there are at least two different polynucleotide excision pathways that function in MMR.
机译:林奇综合征(遗传性非息肉性结直肠癌或HNPCC)是常见的癌症易感综合征。该综合征易患癌症的原因是由于错配修复基因MLH1,MSH2,MSH6或PMS2 / scPMS1中的一种突变引起的缺陷错配修复(MMR)导致的突变积累增加。为了更好地了解Mlh1-Pms1在MMR中的功能,我们使用了酿酒酵母来鉴定六个优势较弱的pms1突变(pms1-G683E,pms1-C817R,pms1-C848S,pms1-H850R,pms1-H703A和pms1-E707A)在野生型细胞中,当存在于exo1Δ突变体的低拷贝质粒中时,令人惊讶地引起了强烈的MMR缺陷。分子建模显示这些突变导致Pms1内切核酸酶活性位点的金属配位口袋中的氨基酸取代,生化研究表明它们使内切核酸酶活性失活。 Mlh1-Pms1的此模型表明Mlh1-FERC基序有助于内切核酸酶活性位点。与此相一致,mlh1-E767stp突变引起的MMR和核酸内切酶缺陷均与显性pms1突变引起的缺陷相似,而影响预测的金属配位残基Mlh1-C769的突变则无效。这些研究确定了Mlh1-Pms1内切酶是MMR在以前未表征的Exo1独立MMR途径中所必需的。作者摘要林奇综合征(遗传性非息肉性结直肠癌或HNPCC)是常见的癌症易感综合征。该综合征易患癌症的原因是由于错配修复基因MLH1,MSH2,MSH6或PMS2 / scPMS1中的一种突变引起的缺陷错配修复(MMR)导致的突变积累增加。除了这些基因外,各种DNA复制因子和切除因子EXO1在通过MMR途径修复受损的DNA中也起作用。尽管EXO1被认为是错配修复中的主要修复核酸酶,但由exo1缺失引起的相对较低的突变率表明存在其他问题。在这里,我们使用遗传学,显微镜和蛋白质生物化学方法分析了酿酒酵母模型生物,以进一步表征人们了解的错配修复途径,该途径在缺乏高度依赖Mlh1-Pms1复合物的EXO1的情况下起作用。出人意料的是,我们发现,对于不存在Exo1的MMR,对于Mlh1-Pms1异源二聚体的核酸内切酶活性至关重要的高度保守的金属结合位点比在存在Exo1的情况下要大得多。因此,这项工作建立了至少两种不同的多核苷酸切除途径在MMR中起作用。

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