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Kinesin-3 and dynein cooperate in long-range retrograde endosome motility along a nonuniform microtubule array
Martin Schuster1, Sreedhar Kilaru, Gero Fink
1Department of Biosciences, University of Exeter, Exeter EX4 4QD, United Kingdom.
Abstract:
The polarity of microtubules (MTs) determines the motors for intracellular motility, with kinesins moving to plus ends and dynein to minus ends. In elongated cells of Ustilago maydis, dynein is thought to move early endosomes (EEs) toward the septum (retrograde), whereas kinesin-3 transports them to the growing cell tip (anterograde). Occasionally, EEs run up to 90 microm in one direction. The underlying MT array consists of unipolar MTs at both cell ends and antipolar bundles in the middle region of the cell. Cytoplasmic MT-organizing centers, labeled with a γ-tubulin ring complex protein, are distributed along the antipolar MTs but are absent from the unipolar regions. Dynein colocalizes with EEs for 10-20 microm after they have left the cell tip. Inactivation of temperature-sensitive dynein abolishes EE motility within the unipolar MT array, whereas long-range motility is not impaired. In contrast, kinesin-3 is continuously present, and its inactivation stops long-range EE motility. This indicates that both motors participate in EE motility, with dynein transporting the organelles through the unipolar MT array near the cell ends, and kinesin-3 taking over at the beginning of the medial antipolar MT array. The cooperation of both motors mediates EE movements over the length of the entire cell.
Insights
In Ustilago maydis, dynein motors move early endosomes (EEs) in cell ends, while kinesin-3 transports them in the cell middle. This motor cooperation ensures efficient early endosome motility throughout the cell.
Area of Science:
- Cell Biology
- Molecular Motors
- Cytoskeletal Dynamics
Background:
- Microtubule (MT) polarity dictates intracellular transport direction.
- In Ustilago maydis, kinesins and dyneins are implicated in early endosome (EE) motility.
Purpose of the Study:
- To elucidate the distinct roles of dynein and kinesin-3 in EE transport within Ustilago maydis.
- To understand how MT organization influences motor protein function in directed cell motility.
Main Methods:
- Utilized a temperature-sensitive dynein mutant to assess EE motility.
- Observed the effects of kinesin-3 inactivation on long-range EE transport.
- Analyzed microtubule organization and motor protein localization in Ustilago maydis cells.
Main Results:
- Dynein is essential for EE motility in unipolar MT regions near cell ends.
- Kinesin-3 mediates long-range EE transport within the antipolar MT array in the cell middle.
- Inactivation of dynein impaired local EE motility, while kinesin-3 inactivation halted long-range transport.
Conclusions:
- Dynein and kinesin-3 act sequentially to mediate EE motility across the entire Ustilago maydis cell.
- Motor protein function is spatially regulated by the underlying microtubule architecture.
- Coordinated action of distinct motor proteins ensures efficient organelle trafficking in elongated cells.
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