Distinct Interaction Modes of the Kinesin-13 Motor Domain with the Microtubule

Chandrima Chatterjee1, Matthieu P M H Benoit1, Vania DePaoli1

  • 1Departments of Physiology and Biophysics, Albert Einstein College of Medicine, Bronx, New York.

Biophysical Journal
|April 14, 2016
PubMed

Insights

Kinesins-13 motor proteins depolymerize microtubules via one-dimensional diffusion (ODD). Specific structural elements like the neck domain and loop-2 orient KLP10A, enabling ODD and distinct microtubule depolymerization functions.

Area of Science:

  • Molecular Biology
  • Cell Biology
  • Biophysics

Background:

  • Kinesins-13 are a unique class of motor proteins that depolymerize microtubules (MTs) without motility.
  • Unlike other kinesins, kinesins-13 exhibit one-dimensional diffusion (ODD) and MT depolymerization at their ends.

Purpose of the Study:

  • To elucidate the mechanism of ODD in kinesins-13.
  • To understand the structural basis for the distinct functionality of kinesin-13 KLP10A from Drosophila melanogaster.

Main Methods:

  • Ensemble and single-molecule fluorescence polarization microscopy were employed.
  • Analysis of wild-type and mutated KLP10A protein constructs bound to microtubules.

Main Results:

  • KLP10A exhibits two binding modes: oriented and mobile, allowing ODD.
  • The kinesin-13 specific neck domain and loop-2 are crucial for orienting the motor domain.
  • The motor domain alone can undergo ODD, with rapid reorientation during the process.
  • A secondary tubulin binding site is not essential for ODD.

Conclusions:

  • The neck domain and loop-2 facilitate KLP10A's MT interaction and ODD.
  • The motor domain's ability to rapidly change orientation underlies ODD.
  • Kinesins-13 possess unique structural features enabling MT depolymerization distinct from motile kinesins.

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