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An In Vitro Approach to Study Mitochondrial Dysfunction: A Cybrid Model
Published on: March 9, 2022
Bioenergetic dysfunction in Huntington's disease human cybrids
I Luisa Ferreira1, Teresa Cunha-Oliveira, Maria V Nascimento
1Center for Neuroscience and Cell Biology, 3004-504 Coimbra, Portugal.
Insights
Huntington's disease (HD) cybrids show altered cellular metabolism, with increased glycolysis but impaired mitochondrial function. This suggests inherent mitochondrial defects in HD impact energy production.
Area of Science:
- Cellular metabolism
- Neurodegenerative diseases
- Mitochondrial dysfunction
Background:
- Huntington's disease (HD) is a neurodegenerative disorder.
- Mitochondrial dysfunction is implicated in HD pathogenesis.
- Cellular models are crucial for studying HD mechanisms.
Purpose of the Study:
- Investigate mitochondrial-associated metabolic pathways in HD.
- Determine the role of mitochondrial defects in HD cellular bioenergetics.
- Analyze metabolic alterations in HD cybrids compared to controls.
Main Methods:
- Utilized Huntington's disease (HD) cybrids and control (CTR) cybrids.
- Assessed ATP levels, glycolytic rate (lactate/pyruvate ratio), and pentose-phosphate pathway activity.
- Measured enzyme activities (e.g., glucose-6-phosphate dehydrogenase, pyruvate dehydrogenase, alpha-ketoglutarate dehydrogenase) and metabolite levels (e.g., NADH/NAD(t), glutamate, alanine).
Main Results:
- HD cybrids displayed increased ATP levels and glycolytic rate.
- Pentose-phosphate pathway activity and pyruvate dehydrogenase activity were decreased in HD cybrids.
- Mitochondrial NADH/NAD(t) levels were reduced, indicating impaired tricarboxylic acid (TCA) cycle function.
- Alpha-ketoglutarate dehydrogenase activity was increased, with altered amino acid metabolism.
Conclusions:
- HD cybrids exhibit a complex metabolic profile with increased glycolysis but compromised mitochondrial respiration.
- Inherent mitochondrial defects in HD patients contribute to cellular bioenergetic dysfunction.
- These findings highlight the critical role of mitochondria in HD pathogenesis.
Abstract:
In this work we studied the mitochondrial-associated metabolic pathways in Huntington's disease (HD) versus control (CTR) cybrids, a cell model in which the contribution of mitochondrial defects from patients is isolated. HD cybrids exhibited an interesting increase in ATP levels, when compared to CTR cybrids. Concomitantly, we observed increased glycolytic rate in HD cybrids, as revealed by increased lactate/pyruvate ratio, which was reverted after inhibition of glycolysis. A decrease in glucose-6-phosphate dehydrogenase activity in HD cybrids further indicated decreased rate of the pentose-phosphate pathway. ATP levels of HD cybrids were significantly decreased under glycolysis inhibition, which was accompanied by a decrease in phosphocreatine. Nevertheless, pyruvate supplementation could not recover HD cybrids' ATP or phosphocreatine levels, suggesting a dysfunction in mitochondrial use of that substrate. Oligomycin also caused a decrease in ATP levels, suggesting a partial support of ATP generation by the mitochondria. Nevertheless, mitochondrial NADH/NAD(t) levels were decreased in HD cybrids, which was correlated with a decrease in pyruvate dehydrogenase activity and protein expression, suggesting decreased tricarboxylic acid cycle (TCA) input from glycolysis. Interestingly, the activity of alpha-ketoglutarate dehydrogenase, a critical enzyme complex that links the TCA to amino acid synthesis and degradation, was increased in HD cybrids. In accordance, mitochondrial levels of glutamate were increased and alanine was decreased, whereas aspartate and glutamine levels were unchanged in HD cybrids. Conversely, malate dehydrogenase activity from total cell extracts was unchanged in HD cybrids. Our results suggest that inherent dysfunction of mitochondria from HD patients affects cellular bioenergetics in an otherwise functional nuclear background.
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