ZERO WORLD RESEARCHLiterature database on amino acids & organic acids

BCAA-nitrogen flux in brown fat controls metabolic health independent of thermogenesis.

Cell2024Verkerke ARP, Wang D, Yoshida N, et al.
Study designOther primary literature
SubjectHuman & animal

Record checks

Study design
Other primary literature
Subject
Human & animal
Publication year
2024
Source
doi.org
Abstract display
Shown here
Publication status
Active
Status checked
17 Aug 2026
Collected
3 Aug 2026
Freshness
Current
Review stage
Automated
Record status
Published

Abstract

Brown adipose tissue (BAT) is best known for thermogenesis. Rodent studies demonstrated that enhanced BAT thermogenesis is tightly associated with increased energy expenditure, reduced body weight, and improved glucose homeostasis. However, human BAT is protective against type 2 diabetes, independent of body weight. The mechanism underlying this dissociation remains unclear. Here, we report that impaired mitochondrial catabolism of branched-chain amino acids (BCAAs) in BAT, by deleting mitochondrial BCAA carriers (MBCs), caused systemic insulin resistance without affecting energy expenditure and body weight. Brown adipocytes catabolized BCAA in the mitochondria as nitrogen donors for the biosynthesis of non-essential amino acids and glutathione. Impaired mitochondrial BCAA-nitrogen flux in BAT resulted in increased oxidative stress, decreased hepatic insulin signaling, and decreased circulating BCAA-derived metabolites. A high-fat diet attenuated BCAA-nitrogen flux and metabolite synthesis in BAT, whereas cold-activated BAT enhanced the synthesis. This work uncovers a metabolite-mediated pathway through which BAT controls metabolic health beyond thermogenesis.

MeSH

Adipocytes, BrownAdipose Tissue, BrownAmino Acids, Branched-ChainAnimalsDiet, High-FatEnergy MetabolismHumansInsulinInsulin ResistanceMaleMiceMice, Inbred C57BLMitochondriaNitrogenOxidative StressSignal TransductionThermogenesis

DOI 10.1016/j.cell.2024.03.030

PMID 38653240

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