Posttranslational modification of tubulin by palmitoylation: I. In vivo and cell-free studies

J M Caron1

  • 1Department of Physiology, University of Connecticut Health Center, Farmington 06030, USA.

Insights

Tubulin, a key microtubule component, undergoes palmitoylation, a fatty acid modification. This previously unknown modification explains how tubulin interacts with cell membranes via hydrophobic interactions.

Area of Science:

  • Cell Biology
  • Molecular Biology
  • Biochemistry

Background:

  • Microtubules, composed of tubulin, interact with intracellular membranes.
  • Tubulin-associated membrane interactions often involve hydrophobic forces.
  • Existing tubulin knowledge cannot explain these hydrophobic membrane associations.

Purpose of the Study:

  • To elucidate the molecular basis of hydrophobic interactions between tubulin and membranes.
  • To identify a posttranslational modification on tubulin responsible for membrane association.
  • To investigate tubulin palmitoylation as a potential mechanism.

Main Methods:

  • Assessed tubulin palmitoylation in resting and thrombin-activated platelets.
  • Developed and characterized a cell-free system for tubulin palmitoylation.
  • Examined tubulin palmitoylation in various microtubule states and in the presence of antimicrotubule drugs.

Main Results:

  • Tubulin was found to be palmitoylated in resting platelets, with levels decreasing upon activation.
  • A cell-free system confirmed nonpolymerized tubulin and tubulin in specific microtubule structures as palmitoylation substrates.
  • Palmitoylation was inhibited by antimicrotubule agents, suggesting a link to microtubule dynamics.

Conclusions:

  • Identified palmitoylation as a novel posttranslational modification of tubulin.
  • Palmitoylation provides a molecular explanation for hydrophobic interactions between tubulin and intracellular membranes.
  • This finding offers new insights into tubulin-membrane crosstalk.

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