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HLTF可防止G4积累并促进G4诱导的叉减速以维持基因组稳定性。

HLTF Prevents G4 Accumulation and Promotes G4-induced Fork Slowing to Maintain Genome Stability.

作者信息

Bai Gongshi, Endres Theresa, Kühbacher Ulrike, Greer Briana H, Peacock Emma M, Crossley Magdalena P, Sathirachinda Ataya, Cortez David, Eichman Brandt F, Cimprich Karlene A

出版信息

bioRxiv. 2023 Oct 27:2023.10.27.563641. doi: 10.1101/2023.10.27.563641.

Abstract

G-quadruplexes (G4s) form throughout the genome and influence important cellular processes, but their deregulation can challenge DNA replication fork progression and threaten genome stability. Here, we demonstrate an unexpected, dual role for the dsDNA translocase HLTF in G4 metabolism. First, we find that HLTF is enriched at G4s in the human genome and suppresses G4 accumulation throughout the cell cycle using its ATPase activity. This function of HLTF affects telomere maintenance by restricting alternative lengthening of telomeres, a process stimulated by G4s. We also show that HLTF and MSH2, a mismatch repair factor that binds G4s, act in independent pathways to suppress G4s and to promote resistance to G4 stabilization. In a second, distinct role, HLTF restrains DNA synthesis upon G4 stabilization by suppressing PrimPol-dependent repriming. Together, the dual functions of HLTF in the G4 response prevent DNA damage and potentially mutagenic replication to safeguard genome stability.

摘要

G-四链体(G4s)在整个基因组中形成并影响重要的细胞过程,但其失调会挑战DNA复制叉的进展并威胁基因组稳定性。在这里,我们证明了双链DNA转位酶HLTF在G4代谢中具有意想不到的双重作用。首先,我们发现HLTF在人类基因组的G4s处富集,并利用其ATPase活性在整个细胞周期中抑制G4的积累。HLTF的这一功能通过限制端粒的替代延长来影响端粒维持,而端粒的替代延长是由G4s刺激的过程。我们还表明,HLTF和MSH2(一种结合G4s的错配修复因子)在独立的途径中发挥作用,以抑制G4s并促进对G4稳定的抗性。在第二个不同的作用中,HLTF通过抑制PrimPol依赖性重新引发来抑制G4稳定后的DNA合成。总之,HLTF在G4反应中的双重功能可防止DNA损伤和潜在的诱变复制,以维护基因组稳定性。

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