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Updated: May 1, 2026

Assessment of Open Probability of the Mitochondrial Permeability Transition Pore in the Setting of Coenzyme Q Excess
Published on: June 1, 2022
Molecular mechanisms of cell death: central implication of ATP synthase in mitochondrial permeability transition
M Bonora1, M R Wieckowski2, C Chinopoulos3
1Section of Pathology, Oncology and Experimental Biology, Laboratory for Technologies of Advanced Therapies (LTTA), Department of Morphology, Surgery and Experimental Medicine, Interdisciplinary Centre for the Study of Inflammation (ICSI), University of Ferrara, Ferrara, Italy.
Abstract:
The term mitochondrial permeability transition (MPT) is commonly used to indicate an abrupt increase in the permeability of the inner mitochondrial membrane to low molecular weight solutes. Widespread MPT has catastrophic consequences for the cell, de facto marking the boundary between cellular life and death. MPT results indeed in the structural and functional collapse of mitochondria, an event that commits cells to suicide via regulated necrosis or apoptosis. MPT has a central role in the etiology of both acute and chronic diseases characterized by the loss of post-mitotic cells. Moreover, cancer cells are often relatively insensitive to the induction of MPT, underlying their increased resistance to potentially lethal cues. Thus, intense efforts have been dedicated not only at the understanding of MPT in mechanistic terms, but also at the development of pharmacological MPT modulators. In this setting, multiple mitochondrial and extramitochondrial proteins have been suspected to critically regulate the MPT. So far, however, only peptidylprolyl isomerase F (best known as cyclophilin D) appears to constitute a key component of the so-called permeability transition pore complex (PTPC), the supramolecular entity that is believed to mediate MPT. Here, after reviewing the structural and functional features of the PTPC, we summarize recent findings suggesting that another of its core components is represented by the c subunit of mitochondrial ATP synthase.
Insights
Mitochondrial permeability transition (MPT) causes cell death by collapsing mitochondria. New research suggests the c subunit of mitochondrial ATP synthase, not just cyclophilin D, is key to the permeability transition pore complex (PTPC).
Area of Science:
- Cell Biology
- Biochemistry
- Pathology
Background:
- Mitochondrial permeability transition (MPT) is a critical process regulating cell death.
- MPT involves the opening of the permeability transition pore complex (PTPC), leading to mitochondrial dysfunction and cell demise.
- Dysregulation of MPT is implicated in various diseases and cancer cell resistance.
Purpose of the Study:
- To elucidate the molecular components of the PTPC.
- To understand the role of specific proteins in mediating MPT.
- To identify potential targets for pharmacological modulation of MPT.
Main Methods:
- Review of existing literature on PTPC structure and function.
- Analysis of recent findings on protein involvement in MPT.
- Investigation of the role of cyclophilin D and mitochondrial ATP synthase subunits.
Main Results:
- Cyclophilin D (peptidylprolyl isomerase F) is a known key component of the PTPC.
- Recent evidence suggests the c subunit of mitochondrial ATP synthase is also a core component of the PTPC.
- This challenges previous understandings of PTPC composition.
Conclusions:
- The PTPC is a multi-protein complex crucial for MPT.
- The c subunit of mitochondrial ATP synthase plays a significant role in MPT.
- Further research into the PTPC composition may lead to novel therapeutic strategies for diseases involving MPT.
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