Controlled and stochastic retention concentrates dynein at microtubule ends to keep endosomes on track

Martin Schuster1, Sreedhar Kilaru, Peter Ashwin

  • 1School of Biosciences, University of Exeter, Exeter, UK.

The EMBO Journal
|February 1, 2011
PubMed

Insights

Fungal dynein/dynactin motors form a comet at microtubule plus-ends to capture early endosomes for retrograde transport. This dynein comet uses both active retention and stochastic accumulation to efficiently capture organelles.

Area of Science:

  • Cell Biology
  • Molecular Motors
  • Cytoskeletal Dynamics

Background:

  • Bidirectional transport of early endosomes (EEs) relies on microtubules (MTs) and motor proteins.
  • In fungi, the dynein/dynactin complex accumulates at MT plus-ends, forming a comet to receive EEs for retrograde transport.

Purpose of the Study:

  • To analyze the mechanism of endosome loading onto dynein motors at microtubule plus-ends.
  • To quantify dynein motor numbers and dynamics within the dynein comet.

Main Methods:

  • Live imaging of photoactivated endosomes and fluorescently labeled dynein.
  • Mathematical modeling of motor dynamics.
  • Utilizing nuclear pores for internal calibration.

Main Results:

  • The dynein comet comprises approximately 55 dynein motors.
  • Half the motors are slowly turning over (T(1/2) ~98s) and actively retained via dynactin-EB1 interaction.
  • The other half are dynamic (T(1/2) ~10s) and accumulate stochastically at MT ends.

Conclusions:

  • A combination of stochastic accumulation and active retention mechanisms forms the dynein comet.
  • This structure ensures efficient capture of early endosomes by retrograde motors.
  • Impairing active retention reduces dynein numbers and leads to endosome detachment.

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