4.7 Article

Ferritin regulates organismal energy balance and thermogenesis

Journal

MOLECULAR METABOLISM
Volume 24, Issue -, Pages 64-79

Publisher

ELSEVIER SCIENCE BV
DOI: 10.1016/j.molmet.2019.03.008

Keywords

Iron metabolism; Redox homeostasis; Adipose tissue; Energy expenditure; Adipose tissue; Mitochondria

Funding

  1. Fundacao Calouste Gulbenkian
  2. Fundacao para a Ciencia e a Tecnologia, Portugal [PTDC/IMI-IMU/5723/2014, 02/SAICT/2017]
  3. FCT [PTDC/IMI-IMU/5723/2014, SFRH/BPD/101608/2014]
  4. European Community [294709-DAMAGECONTROL ERC-2011-AdG]
  5. EMBO long-term fellowship [ALTF 290-2017]
  6. Xunta de Galicia [2015-CP079]
  7. MINECO from EU FEDER Program [SAF2015-71026-R]
  8. German Ministry of Education and Research (BMBF) via the Jena Center of Sepsis Control and Care [01 EO 1502]
  9. Marie Sklodowska-Curie Research Fellowship [REGDAM 707998]
  10. Fundação para a Ciência e a Tecnologia [PTDC/IMI-IMU/5723/2014] Funding Source: FCT

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Objective: The ferritin heavy/heart chain (FTH) gene encodes the ferroxidase component of the iron (Fe) sequestering ferritin complex, which plays a central role in the regulation of cellular Fe metabolism. Here we tested the hypothesis that ferritin regulates organismal Fe metabolism in a manner that impacts energy balance and thermal homeostasis. Methods: We developed a mouse strain, referred herein as Fth(R26 fl)(/fl), expressing a tamoxifen-inducible Cre recombinase under the control of the Rosa26 (R26) promoter and carrying two LoxP (fl) sites: one at the 5'end of the Fth promoter and another the 3' end of the first Fth exon. Tamoxifen administration induces global deletion of Fth in adult Fth(R26 Delta/Delta) mice, testing whether FTH is required for maintenance of organismal homeostasis. Results: Under standard nutritional Fe supply, Fth deletion in adult Fth(R26 Delta/Delta) mice led to a profound deregulation of organismal Fe metabolism, oxidative stress, inflammation, and multi-organ damage, culminating in death. Unexpectedly, Fth deletion was also associated with a profound atrophy of white and brown adipose tissue as well as with collapse of energy expenditure and thermogenesis. This was attributed mechanistically to mitochondrial dysfunction, as assessed in the liver and in adipose tissue. Conclusion: The FTH component of ferritin acts as a master regulator of organismal Fe homeostasis, coupling nutritional Fe supply to organismal redox homeostasis, energy expenditure and thermoregulation. (C) 2019 The Authors. Published by Elsevier GmbH.

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