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缺失形成的滑动错位机制:体内对核酸酶的敏感性。

Slipped misalignment mechanisms of deletion formation: in vivo susceptibility to nucleases.

作者信息

Bzymek M, Saveson C J, Feschenko V V, Lovett S T

机构信息

Department of Biology and Rosenstiel Basic Medical Sciences Research Center, Brandeis University, Waltham, Massachusetts 02454-9110, USA.

出版信息

J Bacteriol. 1999 Jan;181(2):477-82. doi: 10.1128/JB.181.2.477-482.1999.

Abstract

Misalignment of repeated sequences during DNA replication can lead to deletions or duplications in genomic DNA. In Escherichia coli, such genetic rearrangements can occur at high frequencies, independent of the RecA-homologous recombination protein, and are sometimes associated with sister chromosome exchange (SCE). Two mechanisms for RecA-independent genetic rearrangements have been proposed: simple replication misalignment of the nascent strand and its template and SCE-associated misalignment involving both nascent strands. We examined the influence of the 3' exonuclease of DNA polymerase III and exonuclease I on deletion via these mechanisms in vivo. Because mutations in these exonucleases stimulate tandem repeat deletion, we conclude that displaced 3' ends are a common intermediate in both mechanisms of slipped misalignments. Our results also confirm the notion that two distinct mechanisms contribute to slipped misalignments: simple replication misalignment events are sensitive to DNA polymerase III exonuclease, whereas SCE-associated events are sensitive to exonuclease I. If heterologies are present between repeated sequences, the mismatch repair system dependent on MutS and MutH aborts potential deletion events via both mechanisms. Our results suggest that simple slipped misalignment and SCE-associated misalignment intermediates are similarly susceptible to destruction by the mismatch repair system.

摘要

DNA复制过程中重复序列的错配可导致基因组DNA的缺失或重复。在大肠杆菌中,这种基因重排可高频发生,独立于RecA同源重组蛋白,且有时与姐妹染色单体交换(SCE)相关。已提出两种不依赖RecA的基因重排机制:新生链与其模板的简单复制错配以及涉及两条新生链的SCE相关错配。我们在体内研究了DNA聚合酶III的3'核酸外切酶和核酸外切酶I通过这些机制对缺失的影响。由于这些核酸外切酶中的突变会刺激串联重复缺失,我们得出结论,移位的3'末端是两种错配机制的常见中间体。我们的结果还证实了这样一种观点,即两种不同的机制导致错配:简单复制错配事件对DNA聚合酶III核酸外切酶敏感,而SCE相关事件对核酸外切酶I敏感。如果重复序列之间存在异源序列,依赖MutS和MutH的错配修复系统会通过这两种机制中止潜在的缺失事件。我们的结果表明,简单的错配和SCE相关的错配中间体同样容易被错配修复系统破坏。

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