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Updated: Apr 5, 2026

Assessment of Open Probability of the Mitochondrial Permeability Transition Pore in the Setting of Coenzyme Q Excess
Published on: June 1, 2022
Tubulin tail sequences and post-translational modifications regulate closure of mitochondrial voltage-dependent anion
Kely L Sheldon1, Philip A Gurnev2, Sergey M Bezrukov2
1From the Program in Physical Biology, Eunice Kennedy Shriver National Institute of Child Health and Human Development, National Institutes of Health, Bethesda, Maryland 20892 ksheldo@emory.edu.
Abstract:
It was previously shown that tubulin dimer interaction with the mitochondrial outer membrane protein voltage-dependent anion channel (VDAC) blocks traffic through the channel and reduces oxidative metabolism and that this requires the unstructured anionic C-terminal tail peptides found on both α- and β-tubulin subunits. It was unclear whether the α- and β-tubulin tails contribute equally to VDAC blockade and what effects might be due to sequence variations in these tail peptides or to tubulin post-translational modifications, which mostly occur on the tails. The nature of the contribution of the tubulin body beyond acting as an anchor for the tails had not been clarified either. Here we present peptide-protein chimeras to address these questions. These constructs allow us to easily combine a tail peptide with different proteins or combine different tail peptides with a particular protein. The results show that a single tail grafted to an inert protein is sufficient to produce channel closure similar to that observed with tubulin. We show that the β-tail is more than an order of magnitude more potent than the α-tail and that the lower α-tail activity is largely due to the presence of a terminal tyrosine. Detyrosination activates the α-tail, and activation is reversed by the removal of the glutamic acid penultimate to the tyrosine. Nitration of tyrosine reverses the tyrosine inhibition of binding and even induces prolonged VDAC closures. Our results demonstrate that small changes in sequence or post-translational modification of the unstructured tails of tubulin result in substantial changes in VDAC closure.
Insights
Tubulin tails block mitochondrial VDAC channels, reducing metabolism. The beta-tail is more potent than the alpha-tail, with modifications like detyrosination significantly altering VDAC closure activity.
Area of Science:
- Mitochondrial biology
- Protein-protein interactions
- Cellular metabolism
Background:
- Tubulin dimer interaction with VDAC blocks channel traffic and reduces oxidative metabolism.
- This blockade requires unstructured anionic C-terminal tail peptides of α- and β-tubulin.
- Unclear were the equal contribution of α- and β-tubulin tails, sequence variations, post-translational modifications, and the role of the tubulin body.
Purpose of the Study:
- To investigate the individual contributions of α- and β-tubulin tails to VDAC blockade.
- To explore the impact of sequence variations and post-translational modifications on tubulin-VDAC interactions.
- To clarify the role of the tubulin body beyond its function as a tail anchor.
Main Methods:
- Utilized peptide-protein chimeras to combine tail peptides with different proteins or vice versa.
- Assessed channel closure activity of engineered constructs.
- Analyzed the effects of specific sequence elements and post-translational modifications (detyrosination, nitration) on tubulin tail function.
Main Results:
- A single tubulin tail grafted to an inert protein was sufficient to block VDAC channels.
- The β-tubulin tail was over an order of magnitude more potent than the α-tubulin tail.
- Detyrosination activated the α-tail, while tyrosine nitration reversed inhibition and induced prolonged closures.
Conclusions:
- Tubulin C-terminal tails are key mediators of VDAC channel blockade.
- The β-tail is significantly more effective than the α-tail in VDAC closure.
- Post-translational modifications and sequence variations in tubulin tails profoundly influence VDAC interaction and channel function.
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