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CAF-l-dependent control of degradation of the discontinuous strands during mismatch repair

机译:CAF-1依赖性控制错配修复过程中不连续链的降解

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DNA mismatch repair (MMR) is a multifunctional process that promotes genetic stability and suppresses carcinogenesis. Correction of DNA replication errors is its major function. Despite the importance of MMR, its functioning in eukaryotes is not well understood. Here we report that human mismatch correction reactions in cell-free extracts occur during concomitant nick-dependent nucleo-some assembly shaped by the replication histone chaperone CAF-I. Concomitant nucleosome assembly protects the discontinuous mismatch-containing strands from excessive degradation by MMR machinery. Such protection is also demonstrated in a defined purified system that supports both mismatch correction and CAF-l-dependent histone H3-H4 deposition reactions. In addition, we find that the mismatch recognition factor MutSa suppresses CAF-l-dependent histone H3-H4 deposition in a mismatch-dependent manner. We suggest that there is active crosstalk between MMR and replication-dependent nucleosome assembly during the correction of DNA replication errors and, as a result, the nascent mismatch-containing strands are degraded in a controlled manner.
机译:DNA错配修复(MMR)是一个多功能的过程,可提高遗传稳定性并抑制致癌作用。 DNA复制错误的纠正是其主要功能。尽管MMR的重要性,但其在真核生物中的功能尚不清楚。在这里我们报告说,在无细胞提取物中的人类错配校正反应发生在由复制组蛋白伴侣CAF-1形成的伴随的尼克依赖性核小体组装过程中。伴随的核小体装配可保护不连续的含错配链免受MMR机制的过度降解。在定义的纯化系统中也证明了这种保护,该系统支持错配校正和依赖CAF-1的组蛋白H3-H4沉积反应。另外,我们发现失配识别因子MutSa以失配依赖性方式抑制了CAF-1依赖性组蛋白H3-H4的沉积。我们建议在纠正DNA复制错误的过程中,MMR和复制依赖性核小体组装之间存在活跃的串扰,结果,新生的含错配链以受控方式降解。

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