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Visualization of eukaryotic DNA mismatch repair reveals distinct recognition and repair intermediates

机译:真核DNA错配修复的可视化揭示了独特的识别和修复中间体

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DNA mismatch repair (MMR) increases replication fidelity by eliminating mispaired bases resulting from replication errors. In Saccharomyces cerevisiae, mispairs are primarily detected by the Msh2-Msh6 complex and corrected following recruitment of the Mlh1-Pms1 complex. Here, we visualized functional fluorescent versions of Msh2-Msh6 and Mlh1-Pms1 in living cells. We found that the Msh2-Msh6 complex is an S phase component of replication centers independent of mispaired bases; this localized pool accounted for 10%-15% of MMR in wild-type cells but was essential for MMR in the absence of Exo1. Unexpectedly, Mlh1-Pms1 formed nuclear foci that, although dependent on Msh2-Msh6 for formation, rarely colocalized with Msh2-Msh6 replication-associated foci. Mlh1-Pms1 foci increased when the number of mispaired bases was increased; in contrast, Msh2-Msh6 foci were unaffected. These findings suggest the presence of replication machinery-coupled and-independent pathways for mispair recognition by Msh2-Msh6, which direct formation of superstoichiometric Mlh1-Pms1 foci that represent sites of active MMR.
机译:DNA错配修复(MMR)通过消除复制错误导致的碱基错配来提高复制保真度。在酿酒酵母中,错误配对主要由Msh2-Msh6复合体检测到,并在募集Mlh1-Pms1复合体后得到纠正。在这里,我们可视化活细胞中Msh2-Msh6和Mlh1-Pms1的功能性荧光版本。我们发现,Msh2-Msh6复合体是复制中心的S期成分,独立于碱基配对错误。这个局部库占野生型细胞中MMR的10%-15%,但对于没有Exo1的MMR来说是必不可少的。出乎意料的是,Mlh1-Pms1形成了核灶,尽管它依赖于Msh2-Msh6的形成,却很少与Msh2-Msh6复制相关的灶共定位。当错配碱基的数目增加时,Mlh1-Pms1病灶增加。相反,Msh2-Msh6病灶不受影响。这些发现表明存在复制机制耦合的和独立的途径,用于Msh2-Msh6的错配对识别,该途径直接形成代表活性MMR部位的超化学计量Mlh1-Pms1焦点。

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