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Tubulin-VDAC Interaction: Molecular Basis for Mitochondrial Dysfunction in Chemotherapy-Induced Peripheral Neuropathy
1Department of Drug Discovery and Biomedical Sciences, Medical University of South Carolina, Charleston, SC, United States.
Abstract:
Tubulin is a well-established target of microtubule-targeting agents (MTAs), a widely used class of chemotherapeutic drugs. Yet, aside from their powerful anti-cancer efficiency, MTAs induce a dose-limiting and debilitating peripheral neurotoxicity. Despite intensive efforts in the development of neuroprotective agents, there are currently no approved therapies to effectively manage chemotherapy-induced peripheral neuropathy (CIPN). Over the last decade, attempts to unravel the pathomechanisms underlying the development of CIPN led to the observation that mitochondrial dysfunctions stand as a common feature associated with axonal degeneration. Concomitantly, mitochondria emerged as crucial players in the anti-cancer efficiency of MTAs. The findings that free dimeric tubulin could be associated with mitochondrial membranes and interact directly with the voltage-dependent anion channels (VDACs) located in the mitochondrial outer membrane strongly suggested the existence of an interplay between both subcellular compartments. The biological relevance of the interaction between tubulin and VDAC came from subsequent in vitro studies, which found dimeric tubulin to be a potent modulator of VDAC and ultimately of mitochondrial membrane permeability to respiratory substrates. Therefore, one of the hypothetic mechanisms of CIPN implies that MTAs, by binding directly to the tubulin associated with VDAC, interferes with mitochondrial function in the peripheral nervous system. We review here the foundations of this hypothesis and discuss them in light of the current knowledge. A focus is set on the molecular mechanisms behind MTA interference with dimeric tubulin and VDAC interaction, the potential relevance of tubulin isotypes and availability as a free dimer in the specific context of MTA-induced CIPN. We further highlight the emerging interest for VDAC and its interacting partners as a promising therapeutic target in neurodegeneration.
Insights
Microtubule-targeting agents (MTAs) cause neurotoxicity by disrupting mitochondrial function via tubulin-VDAC interactions. This review explores this mechanism and highlights VDAC as a therapeutic target for chemotherapy-induced peripheral neuropathy (CIPN).
Area of Science:
- Molecular Biology
- Neuroscience
- Oncology
Background:
- Microtubule-targeting agents (MTAs) are vital chemotherapeutics but cause dose-limiting peripheral neurotoxicity, known as chemotherapy-induced peripheral neuropathy (CIPN).
- Current therapies for CIPN are lacking, necessitating a deeper understanding of its underlying mechanisms.
- Mitochondrial dysfunction is a common feature in axonal degeneration associated with CIPN.
Purpose of the Study:
- To review the hypothesis that MTAs induce CIPN by interfering with the interaction between dimeric tubulin and voltage-dependent anion channels (VDACs) in mitochondria.
- To discuss the molecular mechanisms of this interaction and its relevance to neurotoxicity.
- To highlight VDAC and its partners as potential therapeutic targets for neurodegenerative diseases, including CIPN.
Main Methods:
- Review of existing literature on MTAs, tubulin, VDAC, mitochondrial function, and CIPN.
- Analysis of in vitro studies investigating tubulin-VDAC interactions and their impact on mitochondrial membrane permeability.
- Discussion of the role of tubulin isotypes and free dimer availability in MTA-induced neurotoxicity.
Main Results:
- Free dimeric tubulin associates with mitochondrial membranes and directly interacts with VDACs.
- Dimeric tubulin modulates VDAC function and mitochondrial membrane permeability to respiratory substrates.
- MTAs may induce CIPN by disrupting this tubulin-VDAC interaction, leading to mitochondrial dysfunction in peripheral nerves.
Conclusions:
- The interaction between tubulin and VDAC presents a plausible mechanism for MTA-induced peripheral neurotoxicity.
- Targeting VDAC and its interacting partners offers a promising therapeutic strategy for managing CIPN and other neurodegenerative conditions.
- Further research into tubulin isotypes and their role in free dimer formation is crucial for understanding CIPN pathogenesis.
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