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Duxin, J. P.

Publications and source records attributed to Duxin, J. P..

2 recordsLinked to original sources

Mechanism of replication-coupled DNA-protein crosslink proteolysis by SPRTN and the proteasome

DNA-protein crosslinks (DPCs) are bulky DNA lesions that interfere with DNA metabolism and therefore threaten genomic integrity. Recent studies implicate the metalloprotease SPRTN in S-phase removal of DPCs, but how SPRTN activity is coupled to DNA replication is unknown. Using Xenopus egg extracts that recapitulate replication-coupled DPC proteolysis, we show that DPCs can be degraded by SPRTN or the proteasome, which act as independent DPC proteases. Proteasome recruitment requires DPC polyubiquitylation, which is triggered by single-stranded DNA, a byproduct of DNA replication. In contrast, SPRTN-mediated DPC degradation is independent of DPC polyubiquitylation but requires polymerase extension of a nascent strand to the lesion. Thus, SPRTN and proteasome activities are coupled to DNA replication by distinct mechanisms and together promote replication across immovable protein barriers.\n\nHighlightsO_LIThe proteasome, in addition to SPRTN, degrades DPCs during DNA replication\nC_LIO_LIProteasome-dependent DPC degradation requires DPC ubiquitylation\nC_LIO_LIDPC ubiquitylation is triggered by ssDNA and does not require the replisome\nC_LIO_LISPRTN-dependent DPC degradation is a post-replicative process\nC_LI

molecular biology

The CMG helicase bypasses DNA protein cross-links to facilitate their repair

Covalent and non-covalent nucleoprotein complexes impede replication fork progression and thereby threaten genome integrity. Using Xenopus laevis egg extracts, we previously showed that when a replication fork encounters a covalent DNA-protein cross-link (DPC) on the leading strand template, the DPC is degraded to a short peptide, allowing its bypass by translesion synthesis polymerases. Strikingly, we show here that when DPC proteolysis is blocked, the replicative DNA helicase (CMG), which travels on the leading strand template, still bypasses the intact DPC. The DNA helicase RTEL1 facilitates bypass, apparently by translocating along the lagging strand template and generating single-stranded DNA downstream of the DPC. Remarkably, RTEL1 is required for efficient DPC proteolysis, suggesting that CMG bypass of a DPC normally precedes its proteolysis. RTEL1 also promotes fork progression past non-covalent protein-DNA complexes. Our data suggest a unified model for the replisomes response to nucleoprotein barriers.

biochemistry