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Diffusion of activated ATM explains γH2AX and MDC1 spread beyond the DNA damage site

Authors :
Georgi Danovski
Greta Panova
Bradley Keister
Georgi Georgiev
Aleksandar Atemin
Sonya Uzunova
Rumen Stamatov
Petar-Bogomil Kanev
Radoslav Aleksandrov
Krastan B. Blagoev
Stoyno S. Stoynov
Source :
iScience, Vol 27, Iss 9, Pp 110826- (2024)
Publication Year :
2024
Publisher :
Elsevier, 2024.

Abstract

Summary: During DNA repair, ATM-induced H2AX histone phosphorylation and MDC1 recruitment spread megabases beyond the damage site. While loop extrusion has been suggested to drive this spread, the underlying mechanism remains unclear. Herein, we provide two lines of evidence that loop extrusion is not the only driver of damage-induced γH2AX spread. First, cohesin loader NIPBL and cohesin subunit RAD21 accumulate considerably later than the phosphorylation of H2AX and MDC1 recruitment at micro-IR-induced damage. Second, auxin-induced RAD21 depletion does not affect γH2AX/MDC1 spread following micro-irradiation or DSB induction by zeocin. To determine if diffusion of activated ATM could account for the observed behavior, we measured the exchange rate and diffusion constants of ATM and MDC1 within damaged and unperturbed chromatin. Using these measurements, we introduced a quantitative model in which the freely diffusing activated ATM phosphorylates H2AX. This model faithfully describes the dynamics of ATM and subsequent γH2AX/MDC1 spread at complex DNA lesions.

Details

Language :
English
ISSN :
25890042
Volume :
27
Issue :
9
Database :
Directory of Open Access Journals
Journal :
iScience
Publication Type :
Academic Journal
Accession number :
edsdoj.14a8058a4f0c4a75968a8af700c246cf
Document Type :
article
Full Text :
https://doi.org/10.1016/j.isci.2024.110826