Dux activates metabolism-lactylation-MET network during early iPSC reprogramming with Brg1 as the histone lactylation reader

Author:

Hu Xinglin1ORCID,Huang Xingwei1234ORCID,Yang Yue1,Sun Yuchen1,Zhao Yanhua1ORCID,Zhang Zhijing1,Qiu Dan1,Wu Yanshuang1,Wu Guangming234,Lei Lei1ORCID

Affiliation:

1. Department of Histology and Embryology, Basic Medical Science College, Harbin Medical University , 194 Xuefu Rd , Nangang District, Harbin , Heilongjiang Province 150081 , China

2. Guangzhou Laboratory , No. 9 XingDaoHuanBei Road, Guangzhou International Bio Island , Guangzhou 510005 Guangdong Province , China

3. Guangzhou Institutes of Biomedicine and Health, Chinese Academy of Sciences , Guangzhou 510530 , China

4. Bioland Laboratory (Guangzhou Regenerative Medicine and Health Guangdong Laboratory) , Guangzhou 510320 , China

Abstract

Abstract The process of induced pluripotent stem cells (iPSCs) reprogramming involves several crucial events, including the mesenchymal-epithelial transition (MET), activation of pluripotent genes, metabolic reprogramming, and epigenetic rewiring. Although these events intricately interact and influence each other, the specific element that regulates the reprogramming network remains unclear. Dux, a factor known to promote totipotency during the transition from embryonic stem cells (ESC) to 2C-like ESC (2CLC), has not been extensively studied in the context of iPSC reprogramming. In this study, we demonstrate that the modification of H3K18la induced by Dux overexpression controls the metabolism-H3K18la-MET network, enhancing the efficiency of iPSC reprogramming through a metabolic switch and the recruitment of p300 via its C-terminal domain. Furthermore, our proteomic analysis of H3K18la immunoprecipitation experiment uncovers the specific recruitment of Brg1 during reprogramming, with both H3K18la and Brg1 being enriched on the promoters of genes associated with pluripotency and epithelial junction. In summary, our study has demonstrated the significant role of Dux-induced H3K18la in the early reprogramming process, highlighting its function as a potent trigger. Additionally, our research has revealed, for the first time, the binding of Brg1 to H3K18la, indicating its role as a reader of histone lactylation.

Funder

Heilongjiang Natural Science Foundation

Publisher

Oxford University Press (OUP)

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