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Updated: Nov 11, 2025

Cellular Redox Profiling Using High-content Microscopy
Published on: May 14, 2017
Proteomics characterization of mitochondrial-derived vesicles under oxidative stress
Goutham Vasam1, Rachel Nadeau2,3, Virgilio J J Cadete4,5
1Interdisciplinary School of Health Sciences, Faculty of Health Sciences, University of Ottawa, Ottawa, ON, Canada.
Abstract:
Mitochondria share attributes of vesicular transport with their bacterial ancestors given their ability to form mitochondrial-derived vesicles (MDVs). MDVs are involved in mitochondrial quality control and their formation is enhanced with stress and may, therefore, play a potential role in mitochondrial-cellular communication. However, MDV proteomic cargo has remained mostly undefined. In this study, we strategically used an in vitro MDV budding/reconstitution assay on cardiac mitochondria, followed by graded oxidative stress, to identify and characterize the MDV proteome. Our results confirmed previously identified cardiac MDV markers, while also revealing a complete map of the MDV proteome, paving the way to a better understanding of the role of MDVs. The oxidative stress vulnerability of proteins directed the cargo loading of MDVs, which was enhanced by antimycin A (Ant-A). Among OXPHOS complexes, complexes III and V were found to be Ant-A-sensitive. Proteins from metabolic pathways such as the TCA cycle and fatty acid metabolism, along with Fe-S cluster, antioxidant response proteins, and autophagy were also found to be Ant-A sensitive. Intriguingly, proteins containing hyper-reactive cysteine residues, metabolic redox switches, including professional redox enzymes and those that mediate iron metabolism, were found to be components of MDV cargo with Ant-A sensitivity. Last, we revealed a possible contribution of MDVs to the formation of extracellular vesicles, which may indicate mitochondrial stress. In conclusion, our study provides an MDV proteomics signature that delineates MDV cargo selectivity and hints at the potential for MDVs and their novel protein cargo to serve as vital biomarkers during mitochondrial stress and related pathologies.
Insights
Mitochondria form vesicles (MDVs) for quality control. This study maps MDV proteins, revealing oxidative stress vulnerability and potential as biomarkers for mitochondrial health.
Area of Science:
- Cell Biology
- Mitochondrial Biology
- Vesicular Transport
Background:
- Mitochondria, essential for cellular energy, share vesicular transport traits with bacteria via mitochondrial-derived vesicles (MDVs).
- MDVs are implicated in mitochondrial quality control and intercellular communication, particularly under stress.
- The proteomic cargo of MDVs remains largely uncharacterized, limiting understanding of their function.
Purpose of the Study:
- To identify and characterize the proteomic cargo of mitochondrial-derived vesicles (MDVs) under oxidative stress.
- To investigate the role of oxidative stress vulnerability in directing MDV cargo loading.
- To explore the potential contribution of MDVs to extracellular vesicle formation and their utility as biomarkers.
Main Methods:
- Utilized an in vitro budding/reconstitution assay on cardiac mitochondria.
- Applied graded oxidative stress and antimycin A (Ant-A) treatment.
- Performed proteomic analysis to identify and characterize MDV cargo.
Main Results:
- Confirmed known cardiac MDV markers and generated a comprehensive MDV proteome map.
- Demonstrated that oxidative stress vulnerability, enhanced by Ant-A, dictates MDV cargo loading.
- Identified specific proteins and pathways (OXPHOS, TCA cycle, fatty acid metabolism, Fe-S clusters, redox enzymes) sensitive to Ant-A and enriched in MDVs.
- Observed potential MDV contribution to extracellular vesicle formation, suggesting a role in signaling mitochondrial stress.
Conclusions:
- The study provides a detailed MDV proteomic signature, clarifying cargo selectivity.
- MDV cargo composition is influenced by protein oxidative stress vulnerability.
- MDVs and their protein cargo show promise as biomarkers for mitochondrial stress and related diseases.
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