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Published on: May 2, 2019
Pharmacological inhibition of USP30 activates tissue-specific mitophagy
Hongke Luo1,2, Judith Krigman1,2, Ruohan Zhang1,2,3
1Departments of Physiology and Cell Biology, The Ohio State University Wexner Medical Center, Columbus, OH, USA.
Aim:
Mitophagy is the regulated process that targets damaged or dysfunctional mitochondria for lysosomal-mediated removal. This process is an essential element of mitochondrial quality control, and dysregulation of mitophagy may contribute to a host of diseases, most notably neurodegenerative conditions such as Parkinson's disease. Mitochondria targeted for mitophagic destruction are molecularly marked by the ubiquitination of several outer mitochondrial membrane (OMM) proteins. This ubiquitination is positively regulated, in part, by the mitochondrial-targeted kinase PINK1 and the E3 ubiquitin ligase Parkin. In contrast, the reverse phenomenon, deubiquitination, removes ubiquitin from Parkin substrates embedded in the OMM proteins, antagonizing mitophagy. Recent evidence suggests that the mitochondrial deubiquitinase USP30 negatively regulates Parkin-mediated mitophagy, providing opportunities to identify USP30 inhibitors and test for their effects in augmenting mitophagy. Here we will characterize a USP30 inhibitor and demonstrate how the pharmacological inhibition of USP30 can augment stress-induced mitophagic flux.
Methods:
We have conducted mitophagy and mitochondrial analyses in cultured cells. We have determined the plasma pharmacokinetics of the USP30 inhibitor in mice and conducted analyses using the mt-Keima mice to measure in vivo mitophagy directly.
Results:
The compound has minimal mitochondrial toxicity in cultured cells and is tolerated well in mice. Interestingly, we demonstrated tissue-specific induction of mitophagy following USP30 pharmacological inhibition. In particular, pharmacological inhibition of USP30 induces a significant increase in cardiac mitophagy without detriment to cardiac function.
Conclusion:
Our data support the evidence that USP30 inhibition may serve as a specific strategy to selectively increase mitophagic flux, allowing for the development of novel therapeutic approaches.
Insights
Inhibiting USP30 enhances mitophagy, a cellular process crucial for removing damaged mitochondria. This finding offers a potential therapeutic strategy for diseases linked to mitochondrial dysfunction, such as Parkinson's disease.
Area of Science:
- Cell Biology
- Biochemistry
- Neuroscience
Background:
- Mitophagy is essential for mitochondrial quality control and preventing diseases like Parkinson's.
- Dysfunctional mitochondria accumulate when mitophagy is impaired.
- USP30 antagonizes mitophagy by removing ubiquitin tags from mitochondria.
Purpose of the Study:
- To characterize a USP30 inhibitor.
- To investigate the effects of USP30 inhibition on mitophagy.
- To explore therapeutic potential of USP30 inhibition.
Main Methods:
- Mitophagy and mitochondrial analyses in cultured cells.
- Pharmacokinetic studies of a USP30 inhibitor in mice.
- In vivo mitophagy measurement using mt-Keima mice.
Main Results:
- USP30 inhibitor showed minimal mitochondrial toxicity in cells and was well-tolerated in mice.
- Pharmacological inhibition of USP30 induced tissue-specific mitophagy.
- Cardiac mitophagy significantly increased without affecting cardiac function.
Conclusions:
- USP30 inhibition selectively enhances mitophagic flux.
- Targeting USP30 presents a novel therapeutic strategy.
- This approach may lead to new treatments for mitochondrial-related diseases.
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