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Updated: May 15, 2026

Isolation of Mitochondria for Mitochondrial Supercomplex Analysis from Small Tissue and Cell Culture Samples
Published on: May 3, 2024
AIF, reactive oxygen species, and neurodegeneration: a "complex" problem
1Department of Anesthesiology and Center for Shock, Trauma and Anesthesiology Research (STAR), University of Maryland School of Medicine, 685 W. Baltimore St., MSTF 5-34, Baltimore, MD 21201, USA. bpolster@anes.umm.edu
Abstract:
Apoptosis-inducing factor (AIF) is a flavin-binding mitochondrial intermembrane space protein that is implicated in diverse but intertwined processes that include maintenance of electron transport chain function, reactive oxygen species regulation, cell death, and neurodegeneration. In acute brain injury, AIF acquires a pro-death role upon translocation from the mitochondria to the nucleus, where it initiates chromatin condensation and large-scale DNA fragmentation. Although harlequin mice exhibiting an 80-90% global reduction in AIF protein are resistant to numerous forms of acute brain injury, they paradoxically undergo slow, progressive neurodegeneration beginning at three months of age. Brain deterioration, accompanied by markers of oxidative stress, is most pronounced in the cerebellum and retina, although it also occurs in the cortex, striatum, and thalamus. Loss of an AIF pro-survival function linked to assembly or stabilization of electron transport chain complex I underlies chronic neurodegeneration. To date, most studies of neurodegeneration have failed to adequately separate the relative importance of the mitochondrial and nuclear functions of AIF in determining the extent of injury, or whether oxidative stress plays a causative role. This review explores the complicated relationship among AIF, complex I, and the regulation of mitochondrial reactive oxygen species levels. It also discusses the controversial role of complex I deficiency in Parkinson's disease, and what can be learned from the AIF- and complex I-depleted harlequin mouse.
Insights
Apoptosis-inducing factor (AIF) protein deficiency protects against acute brain injury but causes progressive neurodegeneration. This paradox highlights AIF
Area of Science:
- Neuroscience
- Cell Biology
- Biochemistry
Background:
- Apoptosis-inducing factor (AIF) is a mitochondrial protein involved in cell death, oxidative stress, and neurodegeneration.
- AIF translocates to the nucleus during acute brain injury, promoting cell death.
- Harlequin mice with reduced AIF are resistant to acute injury but develop chronic neurodegeneration.
Purpose of the Study:
- To explore the dual role of AIF in acute versus chronic brain conditions.
- To investigate the link between AIF, mitochondrial function, and neurodegeneration.
- To clarify the contribution of oxidative stress in AIF-related neurodegenerative processes.
Main Methods:
- Review of existing literature on AIF function and dysfunction.
- Analysis of harlequin mouse models with AIF deficiency.
- Examination of electron transport chain complex I and reactive oxygen species (ROS) regulation.
Main Results:
- AIF deficiency confers resistance to acute brain injury.
- Reduced AIF function, particularly its role in electron transport chain complex I, leads to chronic, progressive neurodegeneration.
- Oxidative stress and mitochondrial dysfunction are key features of this neurodegeneration.
Conclusions:
- AIF has distinct pro-death and pro-survival roles.
- Impaired mitochondrial function due to AIF loss is a critical driver of chronic neurodegeneration.
- Understanding AIF's complex functions is crucial for neurodegenerative disease research, including Parkinson's disease.
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