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The convergence of head-on DNA unwinding forks induces helicase oligomerization and activity transition

Helicases are multifunctional motor proteins with the primary task of separating nucleic acid duplexes. These enzymes often exist in distinct oligomeric forms and play essential roles during nucleic acid metabolism. Whether there is a correlation between their oligomeric state and cellular function,...

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Autores principales: Bi, Lulu, Qin, Zhenheng, Wang, Teng, Li, Yanan, Jia, Xinshuo, Zhang, Xia, Hou, Xi-Miao, Modesti, Mauro, Xi, Xu-Guang, Sun, Bo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9191346/
https://www.ncbi.nlm.nih.gov/pubmed/35658074
http://dx.doi.org/10.1073/pnas.2116462119
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author Bi, Lulu
Qin, Zhenheng
Wang, Teng
Li, Yanan
Jia, Xinshuo
Zhang, Xia
Hou, Xi-Miao
Modesti, Mauro
Xi, Xu-Guang
Sun, Bo
author_facet Bi, Lulu
Qin, Zhenheng
Wang, Teng
Li, Yanan
Jia, Xinshuo
Zhang, Xia
Hou, Xi-Miao
Modesti, Mauro
Xi, Xu-Guang
Sun, Bo
author_sort Bi, Lulu
collection PubMed
description Helicases are multifunctional motor proteins with the primary task of separating nucleic acid duplexes. These enzymes often exist in distinct oligomeric forms and play essential roles during nucleic acid metabolism. Whether there is a correlation between their oligomeric state and cellular function, and how helicases effectively perform functional switching remains enigmatic. Here, we address these questions using a combined single-molecule approach and Bloom syndrome helicase (BLM). By examining the head-on collision of two BLM-mediated DNA unwinding forks, we find that two groups of BLM, upon fork convergence, promptly oligomerize across the fork junctions and tightly bridge two independent single-stranded (ss) DNA molecules that were newly generated by the unwinding BLMs. This protein oligomerization is mediated by the helicase and RNase D C-terminal (HRDC) domain of BLM and can sustain a disruptive force of up to 300 pN. Strikingly, onsite BLM oligomerization gives rise to an immediate transition of their helicase activities, from unwinding dsDNA to translocating along ssDNA at exceedingly fast rates, thus allowing for the efficient displacement of ssDNA-binding proteins, such as RPA and RAD51. These findings uncover an activity transition pathway for helicases and help to explain how BLM plays both pro- and anti-recombination roles in the maintenance of genome stability.
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spelling pubmed-91913462022-12-03 The convergence of head-on DNA unwinding forks induces helicase oligomerization and activity transition Bi, Lulu Qin, Zhenheng Wang, Teng Li, Yanan Jia, Xinshuo Zhang, Xia Hou, Xi-Miao Modesti, Mauro Xi, Xu-Guang Sun, Bo Proc Natl Acad Sci U S A Biological Sciences Helicases are multifunctional motor proteins with the primary task of separating nucleic acid duplexes. These enzymes often exist in distinct oligomeric forms and play essential roles during nucleic acid metabolism. Whether there is a correlation between their oligomeric state and cellular function, and how helicases effectively perform functional switching remains enigmatic. Here, we address these questions using a combined single-molecule approach and Bloom syndrome helicase (BLM). By examining the head-on collision of two BLM-mediated DNA unwinding forks, we find that two groups of BLM, upon fork convergence, promptly oligomerize across the fork junctions and tightly bridge two independent single-stranded (ss) DNA molecules that were newly generated by the unwinding BLMs. This protein oligomerization is mediated by the helicase and RNase D C-terminal (HRDC) domain of BLM and can sustain a disruptive force of up to 300 pN. Strikingly, onsite BLM oligomerization gives rise to an immediate transition of their helicase activities, from unwinding dsDNA to translocating along ssDNA at exceedingly fast rates, thus allowing for the efficient displacement of ssDNA-binding proteins, such as RPA and RAD51. These findings uncover an activity transition pathway for helicases and help to explain how BLM plays both pro- and anti-recombination roles in the maintenance of genome stability. National Academy of Sciences 2022-06-03 2022-06-07 /pmc/articles/PMC9191346/ /pubmed/35658074 http://dx.doi.org/10.1073/pnas.2116462119 Text en Copyright © 2022 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by-nc-nd/4.0/This article is distributed under Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) .
spellingShingle Biological Sciences
Bi, Lulu
Qin, Zhenheng
Wang, Teng
Li, Yanan
Jia, Xinshuo
Zhang, Xia
Hou, Xi-Miao
Modesti, Mauro
Xi, Xu-Guang
Sun, Bo
The convergence of head-on DNA unwinding forks induces helicase oligomerization and activity transition
title The convergence of head-on DNA unwinding forks induces helicase oligomerization and activity transition
title_full The convergence of head-on DNA unwinding forks induces helicase oligomerization and activity transition
title_fullStr The convergence of head-on DNA unwinding forks induces helicase oligomerization and activity transition
title_full_unstemmed The convergence of head-on DNA unwinding forks induces helicase oligomerization and activity transition
title_short The convergence of head-on DNA unwinding forks induces helicase oligomerization and activity transition
title_sort convergence of head-on dna unwinding forks induces helicase oligomerization and activity transition
topic Biological Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9191346/
https://www.ncbi.nlm.nih.gov/pubmed/35658074
http://dx.doi.org/10.1073/pnas.2116462119
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