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Publication : Adipocyte NMNAT1 expression is essential for nuclear NAD(+) biosynthesis but dispensable for regulating thermogenesis and whole-body energy metabolism.

First Author  Yamaguchi S Year  2023
Journal  Biochem Biophys Res Commun Volume  674
Pages  162-169 PubMed ID  37421924
Mgi Jnum  J:341854 Mgi Id  MGI:7513572
Doi  10.1016/j.bbrc.2023.07.007 Citation  Yamaguchi S, et al. (2023) Adipocyte NMNAT1 expression is essential for nuclear NAD(+) biosynthesis but dispensable for regulating thermogenesis and whole-body energy metabolism. Biochem Biophys Res Commun 674:162-169
abstractText  Nicotinamide adenine dinucleotide (NAD(+)) functions as an essential cofactor regulating a variety of biological processes. The purpose of the present study was to determine the role of nuclear NAD(+) biosynthesis, mediated by nicotinamide mononucleotide adenylyltransferase 1 (NMNAT1), in thermogenesis and whole-body energy metabolism. We first evaluated the relationship between NMNAT1 expression and thermogenic activity in brown adipose tissue (BAT), a key organ for non-shivering thermogenesis. We found that reduced BAT NMNAT1expression was associated with inactivation of thermogenic gene program induced by obesity and thermoneutrality. Next, we generated and characterized adiponectin-Cre-driven adipocyte-specific Nmnat1 knockout (ANMT1KO) mice. Loss of NMNAT1 markedly reduced nuclear NAD(+) concentration by approximately 70% in BAT. Nonetheless, adipocyte-specific Nmnat1 deletion had no impact on thermogenic (rectal temperature, BAT temperature and whole-body oxygen consumption) responses to beta-adrenergic ligand norepinephrine administration and acute cold exposure, adrenergic-mediated lipolytic activity, and metabolic responses to obesogenic high-fat diet feeding. In addition, loss of NMNAT1 did not affect nuclear lysine acetylation or thermogenic gene program in BAT. These results demonstrate that adipocyte NMNAT1 expression is required for maintaining nuclear NAD(+) concentration, but not for regulating BAT thermogenesis or whole-body energy homeostasis.
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