Apoptotic vesicles are required to repair DNA damage and suppress premature cellular senescence

Author:

Huang Zhiqing1,Zhuang Yuzhi1,Li Wenwen1,Ma Mingchen12,Lei Fangcao1,Qu Yan1,Li Jiaqi1,Luo Huigen1,Li Changzheng3,Lu Lu1,Ma Lan1,Zhang Xiao14,Kou Xiaoxing13ORCID,Jiang Linjia5ORCID,Mao Xueli1ORCID,Shi Songtao136ORCID

Affiliation:

1. Hospital of Stomatology, Sun Yat‐sen University, Guangdong Provincial Key Laboratory of Stomatology, South China Center of Craniofacial Stem Cell Research Guangzhou China

2. Department of Oral Implantology School and Hospital of Stomatology China Medical University Shenyang Liaoning China

3. Key Laboratory of Stem Cells and Tissue Engineering (Sun Yat‐Sen University), Ministry of Education Guangzhou China

4. National Center of Stomatology, National Laboratory for Digital and Material Technology of Stomatology, National Clinical Research Center for Oral Diseases, Beijing Key Laboratory of Digital Stomatology Peking University School and Hospital of Stomatology Beijing China

5. Guangdong Province Key Laboratory of Malignant Tumor Epigenetics and Gene Regulation, Sun Yat‐sen Memorial Hospital Sun Yat‐sen University Guangzhou China

6. International Center for Aging and Cancer (ICAC) Hainan Medical University Haikou Hainan China

Abstract

AbstractIt is well known that DNA damage can cause apoptosis. However, whether apoptosis and its metabolites contribute to DNA repair is largely unknown. In this study, we found that apoptosis‐deficient Fasmut and Bim/− mice show significantly elevated DNA damage and premature cellular senescence, along with a significantly reduced number of 16,000 g apoptotic vesicles (apoVs). Intravenous infusion of mesenchymal stromal cell (MSC)‐derived 16,000 g apoVs rescued the DNA damage and premature senescence in Fasmut and Bim−/− mice. Moreover, a sublethal dose of radiation exposure caused more severe DNA damage, reduced survival rate, and loss of body weight in Fasmut mice than in wild‐type mice, which can be recovered by the infusion of MSC‐apoVs. Mechanistically, we showed that apoptosis can assemble multiple nuclear DNA repair enzymes, such as the full‐length PARP1, into 16,000 g apoVs. These DNA repair components are directly transferred by 16,000 g apoVs to recipient cells, leading to the rescue of DNA damage and elimination of senescent cells. Finally, we showed that embryonic stem cell‐derived 16,000 g apoVs have superior DNA repair capacity due to containing a high level of nuclear DNA repair enzymes to rescue lethal dose‐irradiated mice. This study uncovers a previously unknown role of 16,000 g apoVs in safeguarding tissues from DNA damage and demonstrates a strategy for using stem cell‐derived apoVs to ameliorate irradiation‐induced DNA damage.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Publisher

Wiley

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