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.

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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