Ctf4 is a conserved replisome component with multiple roles in DNA metabolism. To investigate connections between Ctf4-mediated processes involved in drug resistance, we conducted a suppressor screen of ctf4Δ sensitivity to the methylating agent MMS. We uncovered that mutations in Dpb3 and Dpb4 components of polymerase ε result in the development of drug resistance in ctf4Δ via their histone-binding function. Alleviated sensitivity to MMS of the double mutants was not associated with rescue of ctf4Δ defects in sister chromatid cohesion, replication fork architecture, or template switching, which ensures error-free replication in the presence of genotoxic stress. Strikingly, the improved viability depended on translesion synthesis (TLS) polymerase-mediated mutagenesis, which was drastically increased in ctf4 dpb3 double mutants. Importantly, mutations in Mcm2-Ctf4-Polα and Dpb3-Dpb4 axes of parental (H3-H4)2 deposition on lagging and leading strands invariably resulted in reduced error-free DNA damage tolerance through gap filling by template switch recombination. Overall, we uncovered a chromatin-based drug resistance mechanism in which defects in parental histone transfer after replication fork passage impair error-free recombination bypass and lead to up-regulation of TLS-mediated mutagenesis and drug resistance.

Parental histone deposition on the replicated strands promotes error-free DNA damage tolerance and regulates drug resistance / V. Dolce, S. Dusi, M. Giannattasio, C. Joseph, M. Fumasoni, D. Branzei. - In: GENES & DEVELOPMENT. - ISSN 0890-9369. - 36:3-4(2022 Feb 01), pp. 167-179. [10.1101/gad.349207.121]

Parental histone deposition on the replicated strands promotes error-free DNA damage tolerance and regulates drug resistance

S. Dusi
Secondo
;
M. Giannattasio;M. Fumasoni
Penultimo
;
2022

Abstract

Ctf4 is a conserved replisome component with multiple roles in DNA metabolism. To investigate connections between Ctf4-mediated processes involved in drug resistance, we conducted a suppressor screen of ctf4Δ sensitivity to the methylating agent MMS. We uncovered that mutations in Dpb3 and Dpb4 components of polymerase ε result in the development of drug resistance in ctf4Δ via their histone-binding function. Alleviated sensitivity to MMS of the double mutants was not associated with rescue of ctf4Δ defects in sister chromatid cohesion, replication fork architecture, or template switching, which ensures error-free replication in the presence of genotoxic stress. Strikingly, the improved viability depended on translesion synthesis (TLS) polymerase-mediated mutagenesis, which was drastically increased in ctf4 dpb3 double mutants. Importantly, mutations in Mcm2-Ctf4-Polα and Dpb3-Dpb4 axes of parental (H3-H4)2 deposition on lagging and leading strands invariably resulted in reduced error-free DNA damage tolerance through gap filling by template switch recombination. Overall, we uncovered a chromatin-based drug resistance mechanism in which defects in parental histone transfer after replication fork passage impair error-free recombination bypass and lead to up-regulation of TLS-mediated mutagenesis and drug resistance.
English
DNA damage tolerance; Dpb3–Dpb4; Mcm2–Ctf4–Polα; histone deposition; mutagenesis; recombination; replication fork
Settore BIO/11 - Biologia Molecolare
Articolo
Esperti anonimi
Ricerca di base
Pubblicazione scientifica
1-feb-2022
Cold Spring Harbor Laboratory
36
3-4
167
179
13
Pubblicato
Periodico con rilevanza internazionale
orcid
pubmed
crossref
Aderisco
info:eu-repo/semantics/article
Parental histone deposition on the replicated strands promotes error-free DNA damage tolerance and regulates drug resistance / V. Dolce, S. Dusi, M. Giannattasio, C. Joseph, M. Fumasoni, D. Branzei. - In: GENES & DEVELOPMENT. - ISSN 0890-9369. - 36:3-4(2022 Feb 01), pp. 167-179. [10.1101/gad.349207.121]
open
Prodotti della ricerca::01 - Articolo su periodico
6
262
Article (author)
no
V. Dolce, S. Dusi, M. Giannattasio, C. Joseph, M. Fumasoni, D. Branzei
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2434/906505
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