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Oral Administration of Rotenone using a Gavage and Image Analysis of Alpha-synuclein Inclusions in the Enteric Nervous System
Published on: October 26, 2010
Rotenone decreases intracellular aldehyde dehydrogenase activity: implications for the pathogenesis of Parkinson's
David S Goldstein1, Patti Sullivan, Adele Cooney
1Clinical Neurocardiology Section, CNP/DIR/NINDS/NIH, Bethesda, Maryland, USA.
Abstract:
Repeated systemic administration of the mitochondrial complex I inhibitor rotenone produces a rodent model of Parkinson's disease (PD). Mechanisms of relatively selective rotenone-induced damage to nigrostriatal dopaminergic neurons remain incompletely understood. According to the 'catecholaldehyde hypothesis,' buildup of the autotoxic dopamine metabolite 3,4-dihydroxyphenylacetaldehyde (DOPAL) contributes to PD pathogenesis. Vesicular uptake blockade increases DOPAL levels, and DOPAL is detoxified mainly by aldehyde dehydrogenase (ALDH). We tested whether rotenone interferes with vesicular uptake and intracellular ALDH activity. Endogenous and F-labeled catechols were measured in PC12 cells incubated with rotenone (0-1000 nM, 180 min), without or with F-dopamine (2 microM) to track vesicular uptake and catecholamine metabolism. Rotenone dose dependently increased DOPAL, F-DOPAL, and 3,4-dihydroxyphenylethanol (DOPET) levels while decreasing dopamine and 3,4-dihydroxyphenylacetic acid (DOPAC) levels and the ratio of dopamine to the sum of its deaminated metabolites. In test tubes, rotenone did not affect conversion of DOPAL to DOPAC by ALDH when NAD(+) was supplied, whereas the direct-acting ALDH inhibitor benomyl markedly increased DOPAL and decreased DOPAC concentrations in the reaction mixtures. We propose that rotenone builds up intracellular DOPAL by decreasing ALDH activity and attenuating vesicular sequestration of cytoplasmic catecholamines. The results provide a novel mechanism for selective rotenone-induced toxicity in dopaminergic neurons. We report that rotenone, a mitochondrial complex I inhibitor that produces an animal model of Parkinson's disease, increases intracellular levels of the toxic dopamine metabolite 3,4-dihydroxyphenyl-acetaldehyde (DOPAL), via decreased DOPAL metabolism by aldehyde dehydrogenase (ALDH) and decreased vesicular sequestration of cytoplasmic dopamine by the vesicular monoamine transporter (VMAT). The results provide a novel mechanism for rotenone-induced toxicity in dopaminergic neurons.
Insights
Rotenone, a Parkinson's disease model inducer, increases toxic dopamine metabolite DOPAL by impairing aldehyde dehydrogenase (ALDH) activity and vesicular uptake. This reveals a novel mechanism for rotenone's selective dopaminergic neuron toxicity.
Area of Science:
- Neuroscience
- Biochemistry
- Toxicology
Background:
- Rotenone administration models Parkinson's disease (PD) by damaging dopaminergic neurons.
- The catecholaldehyde hypothesis suggests dopamine metabolite 3,4-dihydroxyphenylacetaldehyde (DOPAL) contributes to PD.
- Vesicular uptake blockade and aldehyde dehydrogenase (ALDH) activity are key factors in DOPAL metabolism.
Purpose of the Study:
- To investigate if rotenone interferes with vesicular uptake and intracellular ALDH activity.
- To elucidate the mechanisms behind rotenone-induced dopaminergic neuron damage.
Main Methods:
- PC12 cells were incubated with rotenone and F-labeled dopamine.
- Measurement of endogenous and F-labeled catechols, including DOPAL, F-DOPAL, DOPET, dopamine, and DOPAC.
- In vitro assessment of rotenone's effect on ALDH activity using purified enzyme and benomyl as a control inhibitor.
Main Results:
- Rotenone dose-dependently increased intracellular DOPAL, F-DOPAL, and DOPET levels.
- Rotenone decreased dopamine and DOPAC levels, altering the dopamine metabolite ratio.
- Rotenone did not inhibit ALDH activity in vitro but decreased ALDH activity and vesicular sequestration in cells.
Conclusions:
- Rotenone increases intracellular DOPAL by reducing ALDH activity and vesicular dopamine uptake.
- This provides a novel mechanism for rotenone's selective toxicity to dopaminergic neurons.
- Findings support the catecholaldehyde hypothesis in rotenone-induced Parkinsonism.
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