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Updated: Dec 20, 2025

Author Spotlight: Decoding Mitochondrial Aging
Published on: June 30, 2023
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.
Objectives:
Apoptosis-Inducing Factor (AIF) is a protein involved in mitochondrial electron transport chain assembly/stability and programmed cell death. The relevant role of this protein is underlined because mutations altering mitochondrial AIF properties result in acute pediatric mitochondriopathies and tumor metastasis. By generating an original AIF-deficient mouse strain, this study attempted to analyze, in a single paradigm, the cellular and developmental metabolic consequences of AIF loss and the subsequent oxidative phosphorylation (OXPHOS) dysfunction.
Methods:
We developed a novel AIF-deficient mouse strain and assessed, using molecular and cell biology approaches, the cellular, embryonic, and adult mice phenotypic alterations. Additionally, we conducted ex vivo assays with primary and immortalized AIF knockout mouse embryonic fibroblasts (MEFs) to establish the cell death characteristics and the metabolic adaptive responses provoked by the mitochondrial electron transport chain (ETC) breakdown.
Results:
AIF deficiency destabilized mitochondrial ETC and provoked supercomplex disorganization, mitochondrial transmembrane potential loss, and high generation of mitochondrial reactive oxygen species (ROS). AIF-/Y MEFs counterbalanced these OXPHOS alterations by mitochondrial network reorganization and a metabolic reprogramming toward anaerobic glycolysis illustrated by the AMPK phosphorylation at Thr172, the overexpression of the glucose transporter GLUT-4, the subsequent enhancement of glucose uptake, and the anaerobic lactate generation. A late phenotype was characterized by the activation of P53/P21-mediated senescence. Notably, approximately 2% of AIF-/Y MEFs diminished both mitochondrial mass and ROS levels and spontaneously proliferated. These cycling AIF-/Y MEFs were resistant to caspase-independent cell death inducers. The AIF-deficient mouse strain was embryonic lethal between E11.5 and E13.5 with energy loss, proliferation arrest, and increased apoptotic levels. Contrary to AIF-/Y MEFs, the AIF KO embryos were unable to reprogram their metabolism toward anaerobic glycolysis. Heterozygous AIF+/- females displayed progressive bone marrow, thymus, and spleen cellular loss. In addition, approximately 10% of AIF+/- females developed perinatal hydrocephaly characterized by brain development impairment, meningeal fibrosis, and medullar hemorrhages; those mice died 5 weeks after birth. AIF+/- with hydrocephaly exhibited loss of ciliated epithelium in the ependymal layer. This phenotype was triggered by the ROS excess. Accordingly, it was possible to diminish the occurrence of hydrocephalus AIF+/- females by supplying dams and newborns with an antioxidant in drinking water.
Conclusions:
In a single knockout model and at 3 different levels (cell, embryo, and adult mice) we demonstrated that by controlling the mitochondrial OXPHOS/metabolism, AIF is a key factor regulating cell differentiation and fate. Additionally, by providing new insights into the pathological consequences of mitochondrial OXPHOS dysfunction, our new findings pave the way for novel pharmacological strategies.
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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