WTAP regulates postnatal development of brown adipose tissue by stabilizing METTL3 in mice

Author:

Wang Yuqin1,Li Xinzhi1,Liu Cenxi2,Zhou Liying3,Shi Lei4,Zhang Zhiguo4,Chen Long1,Gao Ming1,Gao Lanyue5,Xu Yuanyuan5,Huang He3ORCID,Li Jin2ORCID,Chen Zheng1

Affiliation:

1. HIT Center for Life Sciences, School of Life Science and Technology, Harbin Institute of Technology , Harbin, Heilongjiang 150001 , China

2. School of Life Science, State Key Laboratory of Genetic Engineering, Fudan University , Shanghai 200438 , China

3. Shanghai Key Laboratory of Metabolic Remodeling and Health, Institute of Metabolism and Integrative Biology, Fudan University , Shanghai 200438 , China

4. Department of Cardiology, The First Hospital of Jilin University , Changchun, Jilin 130021 , China

5. The Key Laboratory of Liaoning Province on Toxic and Biological Effects of Arsenic, School of Public Health, China Medical University , Shenyang, Liaoning 110122 , China

Abstract

Abstract Brown adipocyte maturation during postnatal development is essential for brown adipose tissue (BAT) to protect animals against cold. Impaired maturation of brown adipocytes leads to cold intolerance. However, the molecular mechanisms that determine the maturation of brown adipocytes during postnatal development are not fully understood. Here, we identify Wilms’ tumor 1-associating protein (WTAP) as an essential regulator in the postnatal development and maturation of BAT. BAT-specific knockout of Wtap (Wtap-BKO) severely impairs maturation of BAT in vivo by decreasing the expression of BAT-selective genes, leading to the whitening of interscapular BAT (iBAT). Single nucleus RNA-sequencing analysis shows the dynamic changes of cell heterogeneity in iBAT of Wtap-BKO mice. Adult mice with WTAP deficiency in BAT display hypothermic and succumb to acute cold challenge. Mechanistically, WTAP deficiency decreases m6A mRNA modification by reducing the protein stability of METTL3. BAT-specific overexpression of Mettl3 partially rescues the phenotypes observed in Wtap-BKO mice. These data demonstrate that WTAP/METTL3 plays an essential role in iBAT postnatal development and thermogenesis.

Funder

National Natural Science Foundation of China

National Key R&D Program of China

Publisher

Oxford University Press (OUP)

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