Molecular crowding creates traffic jams of kinesin motors on microtubules

Cécile Leduc1, Kathrin Padberg-Gehle, Vladimír Varga

  • 1Max Planck Institute of Molecular Cell Biology and Genetics, Pfotenhauerstrasse 108, 01307 Dresden, Germany.

Insights

Motor proteins avoid cellular traffic jams through specific molecular properties. Kinesin-8 forms jams when too dense or slow to detach, unlike kinesin-1 which is adapted for efficient transport.

Area of Science:

  • Cellular Biology
  • Biophysics
  • Molecular Motors

Background:

  • Intracellular transport relies on motor proteins navigating crowded cellular environments.
  • Understanding how motor proteins avoid traffic jams is crucial for cellular function.

Purpose of the Study:

  • To investigate the molecular properties of motor proteins that prevent traffic jam formation in crowded cellular conditions.
  • To determine the conditions under which traffic jams form and how they can be avoided.

Main Methods:

  • Reconstitution of high-density kinesin-8 motor protein traffic on microtubules.
  • Utilizing total internal reflection fluorescence microscopy (TIR-FM).
  • Altering motor concentration, processivity, and microtubule end dissociation rates.

Main Results:

  • Traffic jams, characterized by increased motor density and decreased speed, form even without other cellular components.
  • Jams occur due to critical motor density (density-induced) or slow dissociation from microtubule ends (bottleneck-induced).
  • Experimental data align with theoretical models and simulations for jam formation conditions.

Conclusions:

  • Kinesin-8 can form traffic jams under specific density and dissociation conditions.
  • Transport kinesins like kinesin-1 may be evolutionarily adapted to prevent jams through moderate processivity and rapid dissociation.

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