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Protease-independent control of parthanatos by HtrA2/Omi
Jonas Weiß1, Michelle Heib1, Thiemo Korn1
1Institut für Immunologie, Christian-Albrechts-Universität zu Kiel, Michaelisstr. 5, 24105, Kiel, Germany.
Abstract:
HtrA2/Omi is a mitochondrial serine protease with ascribed pro-apoptotic as well as pro-necroptotic functions. Here, we establish that HtrA2/Omi also controls parthanatos, a third modality of regulated cell death. Deletion of HtrA2/Omi protects cells from parthanatos while reconstitution with the protease restores the parthanatic death response. The effects of HtrA2/Omi on parthanatos are specific and cannot be recapitulated by manipulating other mitochondrial proteases such as PARL, LONP1 or PMPCA. HtrA2/Omi controls parthanatos in a manner mechanistically distinct from its action in apoptosis or necroptosis, i.e., not by cleaving cytosolic IAP proteins but rather exerting its effects without exiting mitochondria, and downstream of PARP-1, the first component of the parthanatic signaling cascade. Also, previously identified or candidate substrates of HtrA2/Omi such as PDXDC1, VPS4B or moesin are not cleaved and dispensable for parthanatos, whereas DBC-1 and stathmin are cleaved, and thus represent potential parthanatic downstream mediators of HtrA2/Omi. Moreover, mass-spectrometric screening for novel parthanatic substrates of HtrA2/Omi revealed that the induction of parthanatos does not cause a substantial proteolytic cleavage or major alterations in the abundance of mitochondrial proteins. Resolving these findings, reconstitution of HtrA2/Omi-deficient cells with a catalytically inactive HtrA2/Omi mutant restored their sensitivity against parthanatos to the same level as the protease-active HtrA2/Omi protein. Additionally, an inhibitor of HtrA2/Omi's protease activity did not confer protection against parthanatic cell death. Our results demonstrate that HtrA2/Omi controls parthanatos in a protease-independent manner, likely via novel, unanticipated functions as a scaffolding protein and an interaction with so far unknown mitochondrial proteins.
Insights
The mitochondrial protease HtrA2/Omi regulates parthanatos, a cell death pathway. Its role in parthanatos is protease-independent, suggesting novel scaffolding functions.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- HtrA2/Omi is a mitochondrial serine protease involved in apoptosis and necroptosis.
- Regulated cell death encompasses multiple pathways, including parthanatos, apoptosis, and necroptosis.
Purpose of the Study:
- To investigate the role of HtrA2/Omi in parthanatos, a distinct form of regulated cell death.
- To elucidate the mechanism by which HtrA2/Omi controls parthanatos.
Main Methods:
- Gene deletion and reconstitution of HtrA2/Omi in cells.
- Analysis of cell death modalities (parthanatos, apoptosis, necroptosis).
- Mass-spectrometric screening for HtrA2/Omi substrates.
- Utilizing catalytically inactive HtrA2/Omi mutants and protease inhibitors.
Main Results:
- HtrA2/Omi deletion protects cells from parthanatos; its reconstitution restores this death pathway.
- HtrA2/Omi controls parthanatos independently of its protease activity and mitochondrial localization.
- DBC-1 and stathmin are cleaved by HtrA2/Omi and are potential mediators of parthanatos.
- HtrA2/Omi acts downstream of PARP-1 in the parthanatos signaling cascade.
- Catalytically inactive HtrA2/Omi restores parthanatos sensitivity, indicating a protease-independent function.
Conclusions:
- HtrA2/Omi regulates parthanatos through a protease-independent mechanism, distinct from its roles in apoptosis and necroptosis.
- HtrA2/Omi likely functions as a scaffolding protein in parthanatos, interacting with unknown mitochondrial partners.
- This study reveals novel functions of HtrA2/Omi in a third modality of regulated cell death.
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