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Updated: May 17, 2026

Activation of Apoptosis by Cytoplasmic Microinjection of Cytochrome c
Published on: June 29, 2011
The oxido-reductase activity of the apoptosis inducing factor: a promising pharmacological tool?
Patricia Ferreira1, Raquel Villanueva, Lauriane Cabon
1Department of Biochemistry, and Institute for Biocomputation and Physics of Complex Systems, University of Zaragoza, Zaragoza, Spain.
Abstract:
The apoptosis inducing factor (AIF) was first discovered as a caspase-independent apoptosis effector that promoted cell death upon release from the mitochondria (triggered by pro-apoptotic stimuli) and relocalization into the nucleus, where it promotes chromatin condensation and DNA fragmentation. AIF is a mammalian mitochondrial FAD-dependent flavoenzyme, ubiquitous in vertebrate cells,and with orthologs in all eukaryotes. Beyond its role in apoptosis AIF has additional functions in mitochondria, mainly related with the redox function of its flavin adenine dinucleotide cofactor (FAD), which despite being poorly understood are vital. Thus, defects in AIF trigger major dysfunctions in oxidative phosphorylation, and cause severe illnesses related with neurodegeneration as a consequence of mitochondriopathies. AIF folds in three modules: a FAD-binding, a nicotine adenine dinucleotide (NADH)-binding and a C-terminal modules. Upon reduction of the flavin cofactor by NADH, conformational changes leading to AIF dimerization are proposed as a key early event in the mitochondrial sensing/signaling functions of AIF. The recent interest in the design of new therapies to modulate caspase-independent apoptosis pathways also makes AIF a potential pharmacological target to treat pathological disorders related with AIF dependent mitochondriopathies. Therefore, the first step in this direction must be to understand the molecular basis of the AIF redox reactions and their relationship with the apoptotic function. Here, we examine recent research towards the molecular mechanisms linked to the AIF oxido-reduction properties.
Insights
Apoptosis Inducing Factor (AIF) is vital for cell death and mitochondrial function. Understanding its redox reactions is key to developing therapies for neurodegenerative diseases linked to AIF dysfunction.
Area of Science:
- Biochemistry
- Cell Biology
- Neuroscience
Background:
- Apoptosis Inducing Factor (AIF) is a mitochondrial flavoenzyme crucial for caspase-independent cell death.
- AIF also plays vital, yet poorly understood, roles in mitochondrial oxidative phosphorylation.
- Defects in AIF lead to mitochondriopathies and neurodegenerative diseases.
Purpose of the Study:
- To investigate the molecular mechanisms underlying AIF's redox properties.
- To explore the relationship between AIF's redox activity and its apoptotic function.
- To provide a foundation for AIF-targeted therapeutic development.
Main Methods:
- Review of recent research on AIF oxido-reduction mechanisms.
- Analysis of AIF's structural modules (FAD-binding, NADH-binding, C-terminal).
- Examination of proposed conformational changes upon NADH reduction and AIF dimerization.
Main Results:
- AIF's redox function is intrinsically linked to its vital roles beyond apoptosis.
- NADH-dependent reduction of the FAD cofactor induces conformational changes and dimerization.
- These redox-driven events are proposed as critical for mitochondrial sensing and signaling.
Conclusions:
- Understanding AIF's redox chemistry is essential for elucidating its diverse cellular functions.
- AIF represents a potential therapeutic target for AIF-dependent mitochondriopathies.
- Further research into AIF's molecular mechanisms can guide the development of novel treatments for neurodegeneration.
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