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Assembling Molecular Shuttles Powered by Reversibly Attached Kinesins
Published on: January 26, 2019
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.
Abstract:
Despite the crowdedness of the interior of cells, microtubule-based motor proteins are able to deliver cargoes rapidly and reliably throughout the cytoplasm. We hypothesize that motor proteins may be adapted to operate in crowded environments by having molecular properties that prevent them from forming traffic jams. To test this hypothesis, we reconstituted high-density traffic of purified kinesin-8 motor protein, a highly processive motor with long end-residency time, along microtubules in a total internal-reflection fluorescence microscopy assay. We found that traffic jams, characterized by an abrupt increase in the density of motors with an associated abrupt decrease in motor speed, form even in the absence of other obstructing proteins. To determine the molecular properties that lead to jamming, we altered the concentration of motors, their processivity, and their rate of dissociation from microtubule ends. Traffic jams occurred when the motor density exceeded a critical value (density-induced jams) or when motor dissociation from the microtubule ends was so slow that it resulted in a pileup (bottleneck-induced jams). Through comparison of our experimental results with theoretical models and stochastic simulations, we characterized in detail under which conditions density- and bottleneck-induced traffic jams form or do not form. Our results indicate that transport kinesins, such as kinesin-1, may be evolutionarily adapted to avoid the formation of traffic jams by moving only with moderate processivity and dissociating rapidly from microtubule ends.
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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