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Published on: August 13, 2016
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.
Abstract:
Bidirectional transport of early endosomes (EEs) involves microtubules (MTs) and associated motors. In fungi, the dynein/dynactin motor complex concentrates in a comet-like accumulation at MT plus-ends to receive kinesin-3-delivered EEs for retrograde transport. Here, we analyse the loading of endosomes onto dynein by combining live imaging of photoactivated endosomes and fluorescent dynein with mathematical modelling. Using nuclear pores as an internal calibration standard, we show that the dynein comet consists of ∼55 dynein motors. About half of the motors are slowly turned over (T(1/2): ∼98 s) and they are kept at the plus-ends by an active retention mechanism involving an interaction between dynactin and EB1. The other half is more dynamic (T(1/2): ∼10 s) and mathematical modelling suggests that they concentrate at MT ends because of stochastic motor behaviour. When the active retention is impaired by inhibitory peptides, dynein numbers in the comet are reduced to half and ∼10% of the EEs fall off the MT plus-ends. Thus, a combination of stochastic accumulation and active retention forms the dynein comet to ensure capturing of arriving organelles by retrograde motors.
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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