Complex I deficiency primes Bax-dependent neuronal apoptosis through mitochondrial oxidative damage.
basic_science · Level V
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- Record sourced from PubMed, PMID 16365298.
- Also identified by PMC identifier 1323177.
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Abstract
Dysfunction of mitochondrial complex I is a feature of human neurodegenerative diseases such as Leber hereditary optic neuropathy and Parkinson's disease. This mitochondrial defect is associated with a recruitment of the mitochondrial-dependent apoptotic pathway in vivo. However, in isolated brain mitochondria, complex I dysfunction caused by either pharmacological or genetic means fails to directly activate this cell death pathway. Instead, deficits of complex I stimulate intramitochondrial oxidative stress, which, in turn, increase the releasable soluble pool of cytochrome c within the mitochondrial intermembrane space. Upon mitochondrial permeabilization by the cell death agonist Bax, more cytochrome c is released to the cytosol from brain mitochondria with impaired complex I activity. Given these results, we propose a model in which defects of complex I lower the threshold for activation of mitochondrial-dependent apoptosis by Bax, thereby rendering compromised neurons more prone to degenerate. This molecular scenario may have far-reaching implications for the development of effective neuroprotective therapies for these incurable illnesses.
Medical subject headings
- Apoptosis Regulatory Proteins
- Electron Transport Complex I
- Mitochondria
- Neurodegenerative Diseases
- Neurons
- bcl-2-Associated X Protein