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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.
Abstract:
Kinesins-13s are members of the kinesin superfamily of motor proteins that depolymerize microtubules (MTs) and have no motile activity. Instead of generating unidirectional movement over the MT lattice, like most other kinesins, kinesins-13s undergo one-dimensional diffusion (ODD) and induce depolymerization at the MT ends. To understand the mechanism of ODD and the origin of the distinct kinesin-13 functionality, we used ensemble and single-molecule fluorescence polarization microscopy to analyze the behavior and conformation of Drosophila melanogaster kinesin-13 KLP10A protein constructs bound to the MT lattice. We found that KLP10A interacts with the MT in two coexisting modes: one in which the motor domain binds with a specific orientation to the MT lattice and another where the motor domain is very mobile and able to undergo ODD. By comparing the orientation and dynamic behavior of mutated and deletion constructs we conclude that 1) the Kinesin-13 class specific neck domain and loop-2 help orienting the motor domain relative to the MT. 2) During ODD the KLP10A motor-domain changes orientation rapidly (rocks or tumbles). 3) The motor domain alone is capable of undergoing ODD. 4) A second tubulin binding site in the KLP10A motor domain is not critical for ODD. 5) The neck domain is not the element preventing KLP10A from binding to the MT lattice like motile kinesins.
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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