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Published on: August 10, 2021
A cryptic mitochondrial targeting motif in Atg4D links caspase cleavage with mitochondrial import and oxidative
Virginie M S Betin1, Thomas D B MacVicar, Stephen F Parsons
1Cell Biology Laboratories, Department of Biochemistry, School of Medical and Veterinary Sciences, University of Bristol, University Walk, Bristol UK.
Abstract:
The Atg4 cysteine proteases play crucial roles in the processing of Atg8 proteins during autophagy, but their regulation during cellular stress and differentiation remains poorly understood. We have found that two Atg4 family members--Atg4C and Atg4D--contain cryptic mitochondrial targeting sequences immediately downstream of their canonical (DEVD) caspase cleavage sites. Consequently, caspase-cleaved Atg4D (ΔN63 Atg4D) localizes to the mitochondrial matrix when expressed in mammalian cells, where it undergoes further processing to a ~42 kDa mitochondrial form. Interestingly, caspase cleavage is not needed for Atg4D mitochondrial import, because ~42 kDa mitochondrial Atg4D is observed in cells treated with caspase inhibitors and in cells expressing caspase-resistant Atg4D (DEVA(63)). Using HeLa cell lines stably expressing ΔN63 Atg4D, we showed that mitochondrial Atg4D sensitizes cells to cell death in the presence of the mitochondrial uncoupler, CCCP, and that mitochondrial cristae are less extensive in these cells. We further showed that the organization of mitochondrial cristae is altered during the mitochondrial clearance phase in differentiating primary human erythroblasts stably expressing ΔN63 Atg4D, and that these cells have elevated levels of mitochondrial reactive oxygen species (ROS) during late stages of erythropoiesis. Together these data suggest that the import of Atg4D during cellular stress and differentiation may play important roles in the regulation of mitochondrial physiology, ROS, mitophagy and cell viability.
Insights
The Atg4D protein targets mitochondria during cellular stress, impacting mitochondrial structure, reactive oxygen species (ROS), and cell death. This reveals new roles for autophagy-related proteins in mitochondrial regulation.
Area of Science:
- Cell Biology
- Molecular Biology
- Autophagy Research
Background:
- Atg4 proteases process Atg8 proteins in autophagy.
- Regulation of Atg4 during stress and differentiation is unclear.
Purpose of the Study:
- Investigate Atg4D regulation and function during cellular stress and differentiation.
- Determine the role of Atg4D in mitochondrial physiology.
Main Methods:
- Expressed Atg4D variants in HeLa cells and primary human erythroblasts.
- Utilized caspase inhibitors and caspase-resistant Atg4D.
- Analyzed mitochondrial morphology, ROS levels, and cell viability.
Main Results:
- Atg4D targets mitochondria independent of caspase cleavage.
- Mitochondrial Atg4D sensitizes cells to CCCP-induced death.
- Altered mitochondrial cristae organization and increased ROS observed in differentiating erythroblasts.
Conclusions:
- Atg4D mitochondrial import is crucial during cellular stress and differentiation.
- Atg4D influences mitochondrial physiology, ROS production, and mitophagy.
- Atg4D plays a role in regulating cell viability.
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