Catalytically inactive Dnmt3b rescues mouse embryonic development by accessory and repressive functions

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作者
Pawel Nowialis
Katarina Lopusna
Jana Opavska
Staci L. Haney
Ajay Abraham
Peike Sheng
Alberto Riva
Amarnath Natarajan
Olga Guryanova
Melanie Simpson
Ryan Hlady
Mingyi Xie
Rene Opavsky
机构
[1] University of Florida College of Medicine,Department of Anatomy and Cell Biology
[2] University of Florida,UF Health Cancer Center
[3] University of Nebraska Medical Center,Department of Internal Medicine
[4] University of Florida College of Medicine,Department of Biochemistry and Molecular Biology
[5] University of Florida,ICBR Bioinformatics, Cancer and Genetics Research Complex
[6] 986805 Nebraska Medical Center,University of Nebraska Medical Center, The Eppley Institute for Research in Cancer and Allied Diseases, Fred & Pamela Buffett Cancer Center
[7] University of Florida College of Medicine,Department of Pharmacology and Therapeutics
[8] NC State University,Molecular and Structural Biochemistry
[9] Mayo Clinic,Department of Molecular Pharmacology and Experimental Therapeutics
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摘要
DNA methylation regulates gene expression in a variety of processes, including mouse embryonic development. Four catalytically active enzymes function in mice as DNA methyltransferases (Dnmts) and as transcriptional regulators. Inactivation of Dnmt3b results in mouse embryonic lethality, but which activities are involved is unclear. Here we show that catalytically inactive Dnmt3b restores a majority of methylation and expression changes deregulated in the absence of Dnmt3b, and as a result, mice survive embryonic development. Thus, Dnmt3b functions as an accessory cofactor supporting catalytic activities performed by other Dnmts. We further demonstrate that Dnmt3b is linked to a control of major developmental pathways, including Wnt and hedgehog signaling. Dnmt3b directly represses Wnt9b whose aberrant up-regulation contributes to embryonic lethality of Dnmt3b knockout embryos. Our results highlight that Dnmt3b is a multifaceted protein that serves as an enzyme, an accessory factor for other methyltransferases, and as a transcriptional repressor in mouse embryogenesis.
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