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Molecular mechanism of G-quadruplex unwinding helicase: sequential and repetitive unfolding of G-quadruplex by Pif1 helicase

机译:G-四链体解旋解旋酶的分子机制:Pif1解旋酶对G-四链体的连续和重复解折叠

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pRecent advances in G-quadruplex (G4) studies have confirmed that G4 structures exist in living cells and may have detrimental effects on various DNA transactions. How helicases resolve G4, however, has just begun to be studied and remains largely unknown. In the present paper, we use single-molecule fluorescence assays to probe Pif1-catalysed unfolding of G4 in a DNA construct resembling an ongoing synthesis of lagging strand stalled by G4. Strikingly, Pif1 unfolds and then halts at the ss/dsDNA junction, followed by rapid reformation of G4 and ‘acrobatic’ re-initiation of unfolding by the same monomer. Thus, Pif1 unfolds single G4 structures repetitively. Furthermore, it is found that Pif1 unfolds G4 sequentially in two large steps. Our study has revealed that, as a stable intermediate, G-triplex (G3) plays an essential role in this process. The repetitive unfolding activity may facilitate Pif1 disrupting the continuously reforming obstructive G4 structures to rescue a stalled replication fork. The proposed mechanism for step-wise unfolding of G4 is probably applicable to other helicases that resolve G4 structures for maintaining genome stability./p
机译:> G四联体(G4)研究的最新进展证实,G4结构存在于活细胞中,可能对各种DNA交易产生不利影响。然而,解旋酶如何分解G4的方法才刚刚开始研究,至今仍然未知。在本文中,我们使用单分子荧光测定法来探测在类似G4停滞链的合成过程中,Pif1催化的G4展开。令人惊讶的是,Pif1会解折叠,然后在ss / dsDNA交界处停止,随后快速重新修饰G4,并由同一单体“特异”重新展开。因此,Pif1重复展开单个G4结构。此外,发现Pif1以两个大步长顺序展开G4。我们的研究表明,作为稳定的中间体,G-triplex(G3)在此过程中起着至关重要的作用。重复的展开活动可能有助于Pif1破坏不断重整阻塞性G4结构以营救停滞的复制叉。提出的G4逐步展开机制可能适用于其他解析G4结构以维持基因组稳定性的解旋酶。

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