Adenosylhomocysteinase plays multiple roles in maintaining the identity and pluripotency of mouse embryonic stem cells

Author:

Jiang Qi1234,Lan Shubing2,Tan Fancheng56,Liang Yiping2,Guo Zhencheng2,Hou Yanlin2,Zhang Hui27,Wu Guangming289,Liu Zhonghua134

Affiliation:

1. College of Life Science, Northeast Agricultural University , Harbin , China

2. Basic Research Department, Guangzhou National Laboratory , Guangzhou , China

3. Key Laboratory of Animal Cellular and Genetic Engineering of Heilongjiang Province , College of Life Science, , Harbin , China

4. Northeast Agricultural University , College of Life Science, , Harbin , China

5. State Key Laboratory of Cellular Stress Biology , Innovation Center for Cell Signaling Network, School of Life Sciences, , Xiamen , China

6. Xiamen University , Innovation Center for Cell Signaling Network, School of Life Sciences, , Xiamen , China

7. The Fifth Affiliated Hospital, Guangzhou Medical University , Guangzhou , China

8. Department of Obstetrics and Gynecology , Guangdong Provincial Key Laboratory of Major Obstetric Diseases, , Guangzhou , China

9. The Third Affiliated Hospital of Guangzhou Medical University , Guangdong Provincial Key Laboratory of Major Obstetric Diseases, , Guangzhou , China

Abstract

Abstract Adenosylhomocysteinase (AHCY), a key enzyme in the methionine cycle, is essential for the development of embryos and the maintenance of mouse embryonic stem cells (mESCs). However, the precise underlying mechanism of Ahcy in regulating pluripotency remains unclear. As the only enzyme that can hydrolyze S-adenosylhomocysteine in mammals, AHCY plays a critical role in the metabolic homeostasis, epigenetic remodeling, and transcriptional regulation. Here, we identified Ahcy as a direct target of OCT4 and unveiled that AHCY regulates the self-renewal and differentiation potency of mESCs through multiple mechanisms. Our study demonstrated that AHCY is required for the metabolic homeostasis of mESCs. We revealed the dual role of Ahcy in both transcriptional activation and inhibition, which is accomplished via the maintenance of H3K4me3 and H3K27me3, respectively. We found that Ahcy is required for H3K4me3-dependent transcriptional activation in mESCs. We also demonstrated that AHCY interacts with polycomb repressive complex 2 (PRC2), thereby maintaining the pluripotency of mESCs by sustaining the H3K27me3-regulated transcriptional repression of related genes. These results reveal a previously unrecognized OCT4–AHCY–PRC2 axis in the regulation of mESCs’ pluripotency and provide insights into the interplay between transcriptional factors, cellular metabolism, chromatin dynamics and pluripotency regulation.

Funder

Guangzhou Science and Technology Planning Project

Natural Science Foundation of Heilongjiang Province

National Natural Science Foundation of China

National Key Research and Development Program of China

Publisher

Oxford University Press (OUP)

Subject

Cell Biology,General Medicine,Reproductive Medicine

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