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The fasting-feeding metabolic transition regulates mitochondrial dynamics

  • ,
  • Béatrice Morio
    ,
  • Mauro Tuñón-Suárez
    ,
  • Sebastian Jannas-Vela
    ,
  • Francisco Díaz-Castro
    ,
  • Jennifer Rieusset
Research Output: Contribution to journal Article Peer review

Publication Information

Tipo di output

Research Output: Contribution to journal Article Peer review

Lingua originale

English

Numero dell’articolo

e21891

Rivista (volume, numero edizione)

FASEB Journal (Volume 35, Edizione 10)

Attività cardine della pubblicazione

  • Published - 01/10/2021

Stato pubblicazione

Published - 01/10/2021

ISSN

0892-6638

Publication IDs

  • Scopus: 85115833821
  • PubMed: 34569666

Abstract

In humans, insulin resistance has been linked to an impaired metabolic transition from fasting to feeding (metabolic flexibility; MetFlex). Previous studies suggest that mitochondrial dynamics response is a putative determinant of MetFlex; however, this has not been studied in humans. Thus, the aim of this study was to investigate the mitochondrial dynamics response in the metabolic transition from fasting to feeding in human peripheral blood mononuclear cells (PBMCs). Six male subjects fasted for 16 h (fasting), immediately after which they consumed a 75-g oral glucose load (glucose). In both fasting and glucose conditions, blood samples were taken to obtain PBMCs. Mitochondrial dynamics were assessed by electron microscopy images. We exposed in vitro acetoacetate-treated PBMCs to the specific IP3R inhibitor Xestospongin B (XeB) to reduce IP3R-mediated mitochondrial Ca2+ accumulation. This allowed us to evaluate the role of ER-mitochondria Ca2+ exchange in the mitochondrial dynamic response to substrate availability. To determine whether PBMCs could be used in obesity context (low MetFlex), we measured mitochondrial dynamics in mouse spleen-derived lymphocytes from WT and ob/ob mice. We demonstrated that the transition from fasting to feeding reduces mitochondria-ER interactions, induces mitochondrial fission and reduces mitochondrial cristae density in human PBMCs. In addition, we demonstrated that IP3R activity is key in the mitochondrial dynamics response when PBMCs are treated with a fasting-substrate in vitro. In murine mononuclear-cells, we confirmed that mitochondria-ER interactions are regulated in the fasted-fed transition and we further highlight mitochondria-ER miscommunication in PBMCs of diabetic mice. In conclusion, our results demonstrate that the fasting/feeding transition reduces mitochondria-ER interactions, induces mitochondrial fission and reduces mitochondrial cristae density in human PBMCs, and that IP3R activity may potentially play a central role.