METTL3-mediated m6A methylation negatively modulates autophagy to support porcine blastocyst development‡

Author:

Cao Zubing1,Zhang Ling1,Hong Renyun2,Li Yunsheng1,Wang Yiqing1,Qi Xin1,Ning Wei1,Gao Di1,Xu Tengteng1,Ma Yangyang1,Yu Tong1,Knott Jason G3,Sathanawongs Anucha4,Zhang Yunhai1

Affiliation:

1. Anhui Province Key Laboratory of Local Livestock and Poultry, Genetical Resource Conservation and Breeding, College of Animal Science and Technology, Anhui Agricultural University, Hefei, China

2. Department of Reproductive Medicine, Zhongda Hospital, School of Medicine, Southeast University, Nanjing, China

3. Developmental Epigenetics Laboratory, Department of Animal Science, Michigan State University, East Lansing, MI, USA

4. Department of Veterinary Biosciences and Veterinary Public Health, Faculty of Veterinary Medicine, Chiang Mai University, Chiang Mai, Thailand

Abstract

Abstract N6-methyladenosine (m6A) catalyzed by METTL3 regulates the maternal-to-zygotic transition in zebrafish and mice. However, the role and mechanism of METTL3-mediated m6A methylation in blastocyst development remains unclear. Here, we show that METTL3-mediated m6A methylation sustains porcine blastocyst development via negatively modulating autophagy. We found that reduced m6A levels triggered by METTL3 knockdown caused embryonic arrest during morula-blastocyst transition and developmental defects in trophectoderm cells. Intriguingly, overexpression of METTL3 in early embryos resulted in increased m6A levels and these embryos phenocopied METTL3 knockdown embryos. Mechanistically, METTL3 knockdown or overexpression resulted in a significant increase or decrease in expression of ATG5 (a key regulator of autophagy) and LC3 (an autophagy marker) in blastocysts, respectively. m6A modification of ATG5 mRNA mainly occurs at 3’UTR, and METTL3 knockdown enhanced ATG5 mRNA stability, suggesting that METTL3 negatively regulated autophagy in an m6A dependent manner. Furthermore, single-cell qPCR revealed that METTL3 knockdown only increased expression of LC3 and ATG5 in trophectoderm cells, indicating preferential inhibitory effects of METTL3 on autophagy activity in the trophectoderm lineage. Importantly, autophagy restoration by 3MA (an autophagy inhibitor) treatment partially rescued developmental defects of METTL3 knockdown blastocysts. Taken together, these results demonstrate that METTL3-mediated m6A methylation negatively modulates autophagy to support blastocyst development.

Funder

Anhui Provincial Natural Science Foundation

Open Fund of State Key Laboratory of Genetic Resources and Evolution

Open Foundation of State Key Laboratory of Agrobiotechnology

National Natural Science Foundation of China

Hefei Innovation and Entrepreneurship Support Plan for Returnee Scholar

Anhui Provincial Innovation and Entrepreneurship Support Plan for Returnee Scholar

National Institute of Child Health and Development

National Institutes of Health

Publisher

Oxford University Press (OUP)

Subject

Cell Biology,General Medicine,Reproductive Medicine

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