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Mitochondrial DNA Instability Supersedes Parkin Mutations in Driving Mitochondrial Proteomic Alterations and
Andrew J Trease1, Steven Totusek1, Eliezer Z Lichter2
1Department of Neurological Sciences, University of Nebraska Medical Center, Omaha, NE 68198, USA.
Abstract:
Mitochondrial quality control is essential in mitochondrial function. To examine the importance of Parkin-dependent mechanisms in mitochondrial quality control, we assessed the impact of modulating Parkin on proteome flux and mitochondrial function in a context of reduced mtDNA fidelity. To accomplish this, we crossed either the Parkin knockout mouse or ParkinW402A knock-in mouse lines to the Polg mitochondrial mutator line to generate homozygous double mutants. In vivo longitudinal isotopic metabolic labeling was followed by isolation of liver mitochondria and synaptic terminals from the brain, which are rich in mitochondria. Mass spectrometry and bioenergetics analysis were assessed. We demonstrate that slower mitochondrial protein turnover is associated with loss of mtDNA fidelity in liver mitochondria but not synaptic terminals, and bioenergetic function in both tissues is impaired. Pathway analysis revealed loss of mtDNA fidelity is associated with disturbances of key metabolic pathways, consistent with its association with metabolic disorders and neurodegeneration. Furthermore, we find that loss of Parkin leads to exacerbation of Polg-driven proteomic consequences, though it may be bioenergetically protective in tissues exhibiting rapid mitochondrial turnover. Finally, we provide evidence that, surprisingly, dis-autoinhibition of Parkin (ParkinW402A) functionally resembles Parkin knockout and fails to rescue deleterious Polg-driven effects. Our study accomplishes three main outcomes: (1) it supports recent studies suggesting that Parkin dependence is low in response to an increased mtDNA mutational load, (2) it provides evidence of a potential protective role of Parkin insufficiency, and (3) it draws into question the therapeutic attractiveness of enhancing Parkin function.
Insights
Parkin deficiency exacerbates mitochondrial dysfunction from reduced mtDNA fidelity, suggesting Parkin insufficiency may be protective and questioning the therapeutic enhancement of Parkin function.
Area of Science:
- Mitochondrial biology
- Neuroscience
- Genetics
Background:
- Mitochondrial quality control is vital for cellular function.
- Parkin-dependent mechanisms play a role in maintaining mitochondrial health.
- Reduced mitochondrial DNA (mtDNA) fidelity can lead to cellular dysfunction.
Purpose of the Study:
- To investigate the impact of Parkin modulation on proteome flux and mitochondrial function under conditions of compromised mtDNA fidelity.
- To assess the interplay between Parkin activity and mtDNA integrity in different tissues.
Main Methods:
- Generation of double mutant mouse models by crossing Parkin knockout or ParkinW402A knock-in lines with the Polg mitochondrial mutator line.
- In vivo longitudinal isotopic metabolic labeling followed by isolation of liver mitochondria and brain synaptic terminals.
- Mass spectrometry and bioenergetic analyses to evaluate proteome flux and mitochondrial function.
Main Results:
- Loss of mtDNA fidelity correlated with slower mitochondrial protein turnover in liver mitochondria but not synaptic terminals.
- Impaired bioenergetic function was observed in both liver and brain mitochondria.
- Parkin deficiency worsened Polg-driven proteomic changes but offered bioenergetic protection in rapidly turning over tissues.
- Dis-autoinhibition of Parkin (ParkinW402A) mimicked Parkin knockout, failing to rescue deleterious effects.
Conclusions:
- Parkin dependence is limited when mtDNA mutational load increases.
- Parkin insufficiency may confer a protective role against mtDNA-related damage.
- Enhancing Parkin function might not be a therapeutically attractive strategy for conditions associated with mtDNA defects.
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