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Alcohol-derived DNA crosslinks are repaired by two distinct mechanisms 期刊论文
NATURE, 2020, 579 (7800) : 603-+
作者:  Xu, Wanghuai;  Zheng, Huanxi;  Liu, Yuan;  Zhou, Xiaofeng;  Zhang, Chao;  Song, Yuxin;  Deng, Xu;  Leung, Michael;  Yang, Zhengbao;  Xu, Ronald X.;  Wang, Zhong Lin;  Zeng, Xiao Cheng;  Wang, Zuankai
收藏  |  浏览/下载:20/0  |  提交时间:2020/07/03

Acetaldehyde is a highly reactive, DNA-damaging metabolite that is produced upon alcohol consumption(1). Impaired detoxification of acetaldehyde is common in the Asian population, and is associated with alcohol-related cancers(1,2). Cells are protected against acetaldehyde-induced damage by DNA crosslink repair, which when impaired causes Fanconi anaemia (FA), a disease resulting in failure to produce blood cells and a predisposition to cancer(3,4). The combined inactivation of acetaldehyde detoxification and the FA pathway induces mutation, accelerates malignancies and causes the rapid attrition of blood stem cells(5-7). However, the nature of the DNA damage induced by acetaldehyde and how this is repaired remains a key question. Here we generate acetaldehyde-induced DNA interstrand crosslinks and determine their repair mechanism in Xenopus egg extracts. We find that two replication-coupled pathways repair these lesions. The first is the FA pathway, which operates using excision-analogous to the mechanism used to repair the interstrand crosslinks caused by the chemotherapeutic agent cisplatin. However, the repair of acetaldehyde-induced crosslinks results in increased mutation frequency and an altered mutational spectrum compared with the repair of cisplatin-induced crosslinks. The second repair mechanism requires replication fork convergence, but does not involve DNA incisions-instead the acetaldehyde crosslink itself is broken. The Y-family DNA polymerase REV1 completes repair of the crosslink, culminating in a distinct mutational spectrum. These results define the repair pathways of DNA interstrand crosslinks caused by an endogenous and alcohol-derived metabolite, and identify an excision-independent mechanism.


DNA interstrand crosslinks induced by acetaldehyde are repaired by both the Fanconi anaemia pathway and by a second, excision-independent repair mechanism.


  
Challenging local realism with human choices 期刊论文
NATURE, 2018, 557 (7704) : 212-+
作者:  Abellan, C.;  Acin, A.;  Alarcon, A.;  Alibart, O.;  Andersen, C. K.;  Andreoli, F.;  Beckert, A.;  Beduini, F. A.;  Bendersky, A.;  Bentivegna, M.;  Bierhorst, P.;  Burchardt, D.;  Cabello, A.;  Carine, J.;  Carrasco, S.;  Carvacho, G.;  Cavalcanti, D.;  Chaves, R.;  Cortes-Vega, J.;  Cuevas, A.;  Delgado, A.;  de Riedmatten, H.;  Eichler, C.;  Farrera, P.;  Fuenzalida, J.;  Garcia-Matos, M.;  Garthoff, R.;  Gasparinetti, S.;  Gerrits, T.;  Jouneghani, F. Ghafari;  Glancy, S.;  Gomez, E. S.;  Gonzalez, P.;  Guan, J-Y;  Handsteiner, J.;  Heinsoo, J.;  Heinze, G.;  Hirschmann, A.;  Jimenez, O.;  Kaiser, F.;  Knill, E.;  Knoll, L. T.;  Krinner, S.;  Kurpiers, P.;  Larotonda, M. A.;  Larsson, J-A;  Lenhard, A.;  Li, H.;  Li, M-H;  Lima, G.;  Liu, B.;  Liu, Y.;  Lopez Grande, I. H.;  Lunghi, T.;  Ma, X.;  Magana-Loaiza, O. S.;  Magnard, P.;  Magnoni, A.;  Marti-Prieto, M.;  Martinez, D.;  Mataloni, P.;  Mattar, A.;  Mazzera, M.;  Mirin, R. P.;  Mitchell, M. W.;  Nam, S.;  Oppliger, M.;  Pan, J-W;  Patel, R. B.;  Pryde, G. J.;  Rauch, D.;  Redeker, K.;  Rielander, D.;  Ringbauer, M.;  Roberson, T.;  Rosenfeld, W.;  Salathe, Y.;  Santodonato, L.;  Sauder, G.;  Scheidl, T.;  Schmiegelow, C. T.;  Sciarrino, F.;  Seri, A.;  Shalm, L. K.;  Shi, S-C;  Slussarenko, S.;  Stevens, M. J.;  Tanzilli, S.;  Toledo, F.;  Tura, J.;  Ursin, R.;  Vergyris, P.;  Verma, V. B.;  Walter, T.;  Wallraff, A.;  Wang, Z.;  Weinfurter, H.;  Weston, M. M.;  White, A. G.;  Wu, C.;  Xavier, G. B.;  You, L.;  Yuan, X.;  Zeilinger, A.;  Zhang, Q.;  Zhang, W.;  Zhong, J.
收藏  |  浏览/下载:13/0  |  提交时间:2019/11/27