Inhibition of intracellular ATP synthesis impairs the recruitment of homologous recombination factors after ionizing radiation

Author:

Hayashi Ryota1,Okumura Hikaru1,Isono Mayu1,Yamauchi Motohiro2,Unami Daiki1,Lusi Rahmartani Tania3,Yamamoto Masamichi4,Kato Yu1,Uchihara Yuki1,Shibata Atsushi1

Affiliation:

1. Keio University Division of Molecular Oncological Pharmacy, Faculty of Pharmacy, , 1-5-30 Shibakoen, Minato-ku, Tokyo 105-8512, Japan

2. Central Institute of Radioisotope Science and Safety Management, Kyushu University Hospital Campus Laboratory, Radioisotope Center, , 3-1-1 Maidashi, Higashi-ku, Fukuoka 812-8582, Japan

3. Faculty of Medicine Universitas Indonesia – Department of Radiation Oncology, Dr. Cipto Mangunkusumo National General Hospital, Jl. Diponegoro No.71, Jakarta Pusat, DKI Jakarta 10430, Indonesia

4. National Cerebral and Cardiovascular Center Department of Research Promotion and Management, , 6-1 Kishibe-Shimmachi, Suita, Osaka 564-8565, Japan

Abstract

Abstract Ionizing radiation (IR)-induced double-strand breaks (DSBs) are primarily repaired by non-homologous end joining or homologous recombination (HR) in human cells. DSB repair requires adenosine-5′-triphosphate (ATP) for protein kinase activities in the multiple steps of DSB repair, such as DNA ligation, chromatin remodeling, and DNA damage signaling via protein kinase and ATPase activities. To investigate whether low ATP culture conditions affect the recruitment of repair proteins at DSB sites, IR-induced foci were examined in the presence of ATP synthesis inhibitors. We found that p53 binding protein 1 foci formation was modestly reduced under low ATP conditions after IR, although phosphorylated histone H2AX and mediator of DNA damage checkpoint 1 foci formation were not impaired. Next, we examined the foci formation of breast cancer susceptibility gene I (BRCA1), replication protein A (RPA) and radiation 51 (RAD51), which are HR factors, in G2 phase cells following IR. Interestingly, BRCA1 and RPA foci in the G2 phase were significantly reduced under low ATP conditions compared to that under normal culture conditions. Notably, RAD51 foci were drastically impaired under low ATP conditions. These results suggest that HR does not effectively progress under low ATP conditions; in particular, ATP shortages impair downstream steps in HR, such as RAD51 loading. Taken together, these results suggest that the maintenance of cellular ATP levels is critical for DNA damage response and HR progression after IR.

Funder

Joint Usage/Research Center Program of the Radiation Biology Center at Kyoto University

National Cancer Center Research and Development Fund

Bristol-Myers Squibb Fund

Astellas Foundation for Research on Metabolic Disorders

Princess Takamatsu Cancer Research Fund

Naito Foundation

Foundation for Promotion of Cancer Research

Kobayashi Foundation for Cancer Research

Suntory Foundation for Life Sciences Bioorganic Research Institute

Sumitomo Foundation

Takeda Science Foundation

AMED

JSPS KAKENHI

Publisher

Oxford University Press (OUP)

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