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.

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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