4.6 Article

Zinc transporter ZIP13 suppresses beige adipocyte biogenesis and energy expenditure by regulating C/EBP-β expression

期刊

PLOS GENETICS
卷 13, 期 8, 页码 -

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PUBLIC LIBRARY SCIENCE
DOI: 10.1371/journal.pgen.1006950

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资金

  1. Ministry of Education, Culture, Sports, Science and Technology of Japan [16K09764, 26860700, 24790936, 25461364, 17H04011]
  2. Fumi Yamamura Memorial Foundation for Female Natural Scientists
  3. Suzuken Memorial Foundation
  4. Banyu Life Science Foundation International
  5. Front Runner of Future Diabetes Research
  6. Astellas Foundation of Research on Metabolic Disorders
  7. Japan Diabetes Foundation
  8. Vehicle Racing Commemorative Foundation
  9. Program for Promoting Practical Applications of Genomic Medicine from Japan Agency for Medical Research and development, AMED
  10. Grants-in-Aid for Scientific Research [24790936, 25461364, 17H04011, 17H03631, 16K09764, 26860700] Funding Source: KAKEN

向作者/读者索取更多资源

Given the relevance of beige adipocytes in adult humans, a better understanding of the molecular circuits involved in beige adipocyte biogenesis has provided new insight into human brown adipocyte biology. Genetic mutations in SLC39A13/ZIP13, a member of zinc transporter family, are known to reduce adipose tissue mass in humans; however, the underlying mechanisms remains unknown. Here, we demonstrate that the Zip13-deficient mouse shows enhanced beige adipocyte biogenesis and energy expenditure, and shows ameliorated diet-induced obesity and insulin resistance. Both gain-and loss-of-function studies showed that an accumulation of the CCAAT/enhancer binding protein-beta (C/EBP-beta) protein, which cooperates with dominant transcriptional co-regulator PR domain containing 16 (PRDM16) to determine brown/beige adipocyte lineage, is essential for the enhanced adipocyte browning caused by the loss of ZIP13. Furthermore, ZIP13-mediated zinc transport is a prerequisite for degrading the C/EBP-beta protein to inhibit adipocyte browning. Thus, our data reveal an unexpected association between zinc homeostasis and beige adipocyte biogenesis, which may contribute significantly to the development of new therapies for obesity and metabolic syndrome.

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