Perturbed gap-filling synthesis in nucleotide excision repair causes histone H2AX phosphorylation in human quiescent cells

Author:

Matsumoto Megumi1,Yaginuma Kie1,Igarashi Ai1,Imura Mayumi1,Hasegawa Mizuho1,Iwabuchi Kuniyoshi2,Date Takayasu2,Mori Toshio3,Ishizaki Kanji4,Yamashita Katsumi1,Inobe Manabu1,Matsunaga Tsukasa1

Affiliation:

1. Laboratory of Human Molecular Genetics, Graduate School of Natural Science and Technology, Kanazawa University, Kanazawa 920-1192, Japan

2. Department of Biochemistry, Kanazawa Medical University, Ishikawa 920-0293, Japan

3. Radioisotope Research Center, Nara Medical University, Kashihara 634-8521, Japan

4. Central Laboratory and Radiation Biology, Aichi Cancer Center Research Institute, Nagoya 464-8681, Japan

Abstract

Human histone H2AX is rapidly phosphorylated on serine 139 in response to DNA double-strand breaks and plays a crucial role in tethering the factors involved in DNA repair and damage signaling. Replication stress caused by hydroxyurea or UV also initiates H2AX phosphorylation in S-phase cells, although UV-induced H2AX phosphorylation in non-cycling cells has recently been observed. Here we study the UV-induced H2AX phosphorylation in human primary fibroblasts under growth-arrested conditions. This reaction absolutely depends on nucleotide excision repair (NER) and is mechanistically distinct from the replication stress-induced phosphorylation. The treatment of cytosine-β-D-arabinofuranoside strikingly enhances the NER-dependent H2AX phosphorylation and induces the accumulation of replication protein A (RPA) and ATR-interacting protein (ATRIP) at locally UV-damaged subnuclear regions. Consistently, the phosphorylation appears to be mainly mediated by ataxia-telangiectasia mutated and Rad3-related (ATR), although Chk1 (Ser345) is not phosphorylated by the activated ATR. The cellular levels of DNA polymerases δ and ϵ and proliferating cell nuclear antigen are markedly reduced in quiescent cells. We propose a model that perturbed gap-filling synthesis following dual incision in NER generates single-strand DNA gaps and hence initiates H2AX phosphorylation by ATR with the aid of RPA and ATRIP.

Publisher

The Company of Biologists

Subject

Cell Biology

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