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Nipsnap1—A regulatory factor required for long-term maintenance of non-shivering thermogenesis

Authors :
Yang Liu
Yue Qu
Chloe Cheng
Pei-Yin Tsai
Kaydine Edwards
Siwen Xue
Supriya Pandit
Sakura Eguchi
Navneet Sanghera
Joeva J. Barrow
Source :
Molecular Metabolism, Vol 75, Iss , Pp 101770- (2023)
Publication Year :
2023
Publisher :
Elsevier, 2023.

Abstract

Objective: The activation of non-shivering thermogenesis (NST) has strong potential to combat obesity and metabolic disease. The activation of NST however is extremely temporal and the mechanisms surrounding how the benefits of NST are sustained once fully activated, remain unexplored. The objective of this study is to investigate the role of 4-Nitrophenylphosphatase Domain and Non-Neuronal SNAP25-Like 1 (Nipsnap1) in NST maintenance, which is a critical regulator identified in this study. Methods: The expression of Nipsnap1 was profiled by immunoblotting and RT-qPCR. We generated Nipsnap1 knockout mice (N1–KO) and investigated the function of Nipsnap1 in NST maintenance and whole-body metabolism using whole body respirometry analyses. We evaluate the metabolic regulatory role of Nipsnap1 using cellular and mitochondrial respiration assay. Results: Here, we show Nipsnap1 as a critical regulator of long-term thermogenic maintenance in brown adipose tissue (BAT). Nipsnap1 localizes to the mitochondrial matrix and increases its transcript and protein levels in response to both chronic cold and β3 adrenergic signaling. We demonstrated that these mice are unable to sustain activated energy expenditure and have significantly lower body temperature in the face of an extended cold challenge. Furthermore, when mice are exposed to the pharmacological β3 agonist CL 316, 243, the N1–KO mice exhibit significant hyperphagia and altered energy balance. Mechanistically, we demonstrate that Nipsnap1 integrates with lipid metabolism and BAT-specific ablation of Nipsnap1 leads to severe defects in beta-oxidation capacity when exposed to a cold environmental challenge. Conclusion: Our findings identify Nipsnap1 as a potent regulator of long-term NST maintenance in BAT.

Details

Language :
English
ISSN :
22128778
Volume :
75
Issue :
101770-
Database :
Directory of Open Access Journals
Journal :
Molecular Metabolism
Publication Type :
Academic Journal
Accession number :
edsdoj.f8ba1a2605c44840927d4a1a638c1d75
Document Type :
article
Full Text :
https://doi.org/10.1016/j.molmet.2023.101770