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  4. SIRT7 suppresses energy expenditure and thermogenesis by regulating brown adipose tissue functions in mice
 
research article

SIRT7 suppresses energy expenditure and thermogenesis by regulating brown adipose tissue functions in mice

Yoshizawa, Tatsuya
•
Sato, Yoshifumi
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Sobuz, Shihab U.
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December 12, 2022
Nature Communications

Brown adipose tissue plays a central role in the regulation of the energy balance by expending energy to produce heat. NAD(+)-dependent deacylase sirtuins have widely been recognized as positive regulators of brown adipose tissue thermogenesis. However, here we reveal that SIRT7, one of seven mammalian sirtuins, suppresses energy expenditure and thermogenesis by regulating brown adipose tissue functions. Whole-body and brown adipose tissue-specific Sirt7 knockout mice have higher body temperature and energy expenditure. SIRT7 deficiency increases the protein level of UCP1, a key regulator of brown adipose tissue thermogenesis. Mechanistically, we found that SIRT7 deacetylates insulin-like growth factor 2 mRNA-binding protein 2, an RNA-binding protein that inhibits the translation of Ucp1 mRNA, thereby enhancing its inhibitory action on Ucp1. Furthermore, SIRT7 attenuates the expression of batokine genes, such as fibroblast growth factor 21. In conclusion, we propose that SIRT7 serves as an energy-saving factor by suppressing brown adipose tissue functions. Sirtuins have been reported to positively regulate brown adipose tissue thermogenesis. Here the authors report that brown adipocytic SIRT7 suppresses whole-body energy expenditure and thermogenesis in mice, potentially by attenuating batokine gene expressions and Ucp1 mRNA translation.

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Type
research article
DOI
10.1038/s41467-022-35219-z
Web of Science ID

WOS:000969735000015

Author(s)
Yoshizawa, Tatsuya
Sato, Yoshifumi
Sobuz, Shihab U.
Mizumoto, Tomoya
Tsuyama, Tomonori
Karim, Md Fazlul
Miyata, Keishi
Tasaki, Masayoshi
Yamazaki, Masaya
Kariba, Yuichi
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Date Issued

2022-12-12

Publisher

Nature Portfolio

Published in
Nature Communications
Volume

13

Issue

1

Article Number

7439

Subjects

Multidisciplinary Sciences

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Science & Technology - Other Topics

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mitochondrial uncoupling protein

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ucp1 messenger-rna

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transcriptional regulation

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obesity

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fat

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age

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metabolism

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resistance

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stress

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gene

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LISP  
Available on Infoscience
May 22, 2023
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/197770
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