DNA损伤
生物
DNA修复
染色质
DNA
DNA复制
细胞生物学
基因组不稳定性
过氧化物还原蛋白
遗传学
生物化学
酶
过氧化物酶
作者
Amandine Moretton,Savvas Kourtis,Antoni Gañez Zapater,Chiara Calabrò,Lorena Espinar,Frédéric Fontaine,Evangelia Darai,Etna Abad,Samuel Block,Laura Pascual‐Reguant,Natalia Pardo‐Lorente,Ritobrata Ghose,Matthew G. Vander Heiden,Ana Janic,André C. Müller,Joanna I. Loizou,Sara Sdelci
标识
DOI:10.15252/msb.202211267
摘要
Abstract While cellular metabolism impacts the DNA damage response, a systematic understanding of the metabolic requirements that are crucial for DNA damage repair has yet to be achieved. Here, we investigate the metabolic enzymes and processes that are essential for the resolution of DNA damage. By integrating functional genomics with chromatin proteomics and metabolomics, we provide a detailed description of the interplay between cellular metabolism and the DNA damage response. Further analysis identified that Peroxiredoxin 1, PRDX1, contributes to the DNA damage repair. During the DNA damage response, PRDX1 translocates to the nucleus where it reduces DNA damage‐induced nuclear reactive oxygen species. Moreover, PRDX1 loss lowers aspartate availability, which is required for the DNA damage‐induced upregulation of de novo nucleotide synthesis. In the absence of PRDX1, cells accumulate replication stress and DNA damage, leading to proliferation defects that are exacerbated in the presence of etoposide, thus revealing a role for PRDX1 as a DNA damage surveillance factor.
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