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PMID: 32442397 Published · ppublish English

HLTF Promotes Fork Reversal, Limiting Replication Stress Resistance and Preventing Multiple Mechanisms of Unrestrained DNA Synthesis.

Molecular cell ·Vol. 78 ·No. 6 ·2020-00-18

Bai G, Kermi C, Stoy H, Schiltz CJ, Bacal J, Zaino AM, Hadden MK, Eichman BF, Lopes M, Cimprich KA

Abstract

DNA replication stress can stall replication forks, leading to genome instability. DNA damage tolerance pathways assist fork progression, promoting replication fork reversal, translesion DNA synthesis (TLS), and repriming. In the absence of the fork remodeler HLTF, forks fail to slow following replication stress, but underlying mechanisms and cellular consequences remain elusive. Here, we demonstrate that HLTF-deficient cells fail to undergo fork reversal in vivo and rely on the primase-polymerase PRIMPOL for repriming, unrestrained replication, and S phase progression upon limiting nucleotide levels. By contrast, in an HLTF-HIRAN mutant, unrestrained replication relies on the TLS protein REV1. Importantly, HLTF-deficient cells also exhibit reduced double-strand break (DSB) formation and increased survival upon replication stress. Our findings suggest that HLTF promotes fork remodeling, preventing other mechanisms of replication stress tolerance in cancer cells. This remarkable plasticity of the replication fork may determine the outcome of replication stress in terms of genome integrity, tumorigenesis, and response to chemotherapy.

Keywords
DNA replication replication stress response fork reversal HLTF PRIMPOL REV1 DNA damage tolerance translesion synthesis ATR inhibition replication catastrophe
MeSH 主题词
Cell Line, Tumor DNA/biosynthesis,genetics DNA Damage/genetics DNA Primase/metabolism,physiology DNA Repair/genetics DNA Replication/genetics,physiology DNA-Binding Proteins/genetics,metabolism DNA-Directed DNA Polymerase/metabolism,physiology HEK293 Cells Humans K562 Cells Multifunctional Enzymes/metabolism,physiology Nucleotidyltransferases/metabolism,physiology Transcription Factors/genetics,metabolism
Article Info
Journal
Molecular cell
Abbr.
Mol Cell
ISSN
1097-4164
Corresponding email
Published
2020-00-18
Language
English
Country/Region
United States
NLM ID
9802571
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