Mitochondrial AIF loss causes metabolic reprogramming, caspase-independent cell death blockade, embryonic lethality,

Laure Delavallée1, Navrita Mathiah2, Lauriane Cabon1

  • 1Centre de Recherche des Cordeliers, INSERM, Sorbonne Université, Université de Paris, Cell Death and Drug Resistance in Hematological Disorders Team, F-75006, Paris, France.

Abstract

Insights

Apoptosis-Inducing Factor (AIF) loss disrupts mitochondrial function, causing embryonic lethality and developmental defects in mice. Compensatory metabolic reprogramming occurs in cells, but not embryos, highlighting AIF

Area of Science:

  • Mitochondrial Biology and Metabolism
  • Cell Death and Differentiation
  • Developmental Biology

Background:

  • Apoptosis-Inducing Factor (AIF) is crucial for mitochondrial electron transport chain (ETC) stability and programmed cell death.
  • AIF mutations are linked to pediatric mitochondriopathies and cancer metastasis, underscoring its significance.
  • Understanding AIF's role in cellular and developmental metabolism is vital for addressing related pathologies.

Purpose of the Study:

  • To investigate the cellular and developmental metabolic consequences of AIF loss.
  • To analyze the impact of AIF deficiency on oxidative phosphorylation (OXPHOS) dysfunction.
  • To characterize AIF's role in cell differentiation and fate determination using a novel knockout mouse model.

Main Methods:

  • Development of a novel AIF-deficient mouse strain.
  • Assessment of phenotypic alterations in cells, embryos, and adult mice using molecular and cell biology.
  • Ex vivo assays with AIF knockout mouse embryonic fibroblasts (MEFs) to study cell death and metabolic adaptation to ETC breakdown.

Main Results:

  • AIF deficiency destabilized the mitochondrial ETC, increased reactive oxygen species (ROS), and led to mitochondrial dysfunction.
  • AIF-deficient MEFs exhibited metabolic reprogramming towards anaerobic glycolysis, while AIF-deficient embryos showed embryonic lethality and failed metabolic adaptation.
  • Heterozygous AIF+/- females displayed progressive organ cellular loss and a subset developed hydrocephaly, linked to ROS excess and treatable with antioxidants.

Conclusions:

  • AIF is a key regulator of cell differentiation and fate by controlling mitochondrial OXPHOS and metabolism.
  • AIF deficiency leads to distinct cellular and embryonic metabolic responses, impacting development and survival.
  • These findings offer insights into mitochondrial OXPHOS dysfunction pathologies and suggest potential pharmacological strategies.

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