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Strand invasion by HLTF as a mechanism for template switch in fork rescue

机译:HLTF的钢绞线入侵作为货叉救援中模板切换的机制

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摘要

Stalling of replication forks at unrepaired DNA lesions can result in discontinuities opposite the damage in the newly synthesized DNA strand. Translesion synthesis or facilitating the copy from the newly synthesized strand of the sister duplex by template switching can overcome such discontinuities. During template switch, a new primer–template junction has to be formed and two mechanisms, including replication fork reversal and D-loop formation have been suggested. Genetic evidence indicates a major role for yeast Rad5 in template switch and that both Rad5 and its human orthologue, Helicase-like transcription factor (HLTF), a potential tumour suppressor can facilitate replication fork reversal. This study demonstrates the ability of HLTF and Rad5 to form a D-loop without requiring ATP binding and/or hydrolysis. We also show that this strand-pairing activity is independent of RAD51 in vitro and is not mechanistically related to that of another member of the SWI/SNF family, RAD54. In addition, the 3′-end of the invading strand in the D-loop can serve as a primer and is extended by DNA polymerase. Our data indicate that HLTF is involved in a RAD51-independent D-loop branch of template switch pathway that can promote repair of gaps formed during replication of damaged DNA.
机译:复制叉在未修复的DNA损伤处的失速可能导致与新合成的DNA链中的损伤相反的不连续性。跨病变的合成或通过模板转换促进新合成的姊妹双链的复制可以克服这种不连续性。在模板转换过程中,必须形成新的引物-模板连接,并提出了两种机制,包括复制叉反向和D环形成。遗传证据表明酵母Rad5在模板转换中起主要作用,Rad5及其人类直向同源物,Helicase样转录因子(HLTF)(一种潜在的肿瘤抑制因子)均可促进复制叉逆转。这项研究证明了HLTF和Rad5形成D环的能力而无需ATP结合和/或水解。我们还显示,这种链配对活性在体外独立于RAD51,并且与SWI / SNF家族的另一个成员RAD54在机械上不相关。另外,D-环中的侵入链的3'末端可以用作引物,并通过DNA聚合酶延伸。我们的数据表明HLTF参与了模板转换途径的RAD51独立的D环分支,该分支可以促进修复受损DNA复制过程中形成的缺口。

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