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Dynactin p150 promotes processive motility of DDB complexes by minimizing diffusional behavior of dynein
Qingzhou Feng1,2, Allison M Gicking1, William O Hancock1,2
1Department of Biomedical Engineering, Pennsylvania State University, University Park, PA 16802.
Abstract:
Cytoplasmic dynein is activated by forming a complex with dynactin and the adaptor protein BicD2. We used interferometric scattering (iSCAT) microscopy to track dynein-dynactin-BicD2 (DDB) complexes in vitro and developed a regression-based algorithm to classify switching between processive, diffusive, and stuck motility states. We find that DDB spends 65% of its time undergoing processive stepping, 4% undergoing 1D diffusion, and the remaining time transiently stuck to the microtubule. Although the p150 subunit was previously shown to enable dynactin diffusion along microtubules, blocking p150 enhanced the proportion of time DDB diffused and reduced the time DDB processively walked. Thus, DDB diffusive behavior most likely results from dynein switching into an inactive (diffusive) state, rather than p150 tethering the complex to the microtubule. DDB-kinesin-1 complexes, formed using a DNA adapter, moved slowly and persistently, and blocking p150 led to a 70 nm/s plus-end shift in the average velocity of the complexes, in quantitative agreement with the shift of isolated DDB into the diffusive state. The data suggest a DDB activation model in which dynactin p150 enhances dynein processivity not solely by acting as a diffusive tether that maintains microtubule association, but rather by acting as an allosteric activator that promotes a conformation of dynein optimal for processive stepping. In bidirectional cargo transport driven by the opposing activities of kinesin and dynein-dynactin-BicD2, the dynactin p150 subunit promotes retrograde transport and could serve as a target for regulators of transport.
Insights
Cytoplasmic dynein-dynactin-BicD2 complexes utilize the dynactin p150 subunit for processive movement, not just microtubule tethering. Blocking p150 shifts dynein to a diffusive state, revealing its role in activating dynein for retrograde transport.
Area of Science:
- Molecular motor function
- Cellular transport mechanisms
- Biophysics
Background:
- Cytoplasmic dynein motors are essential for intracellular transport.
- Dynein function is regulated by its interaction with dynactin and adaptor proteins like BicD2.
- The dynactin p150 subunit's role in dynein motility has been debated.
Purpose of the Study:
- To investigate the role of the dynactin p150 subunit in the motility of dynein-dynactin-BicD2 (DDB) complexes.
- To determine whether p150 acts as a tether or an activator for dynein processivity.
- To understand the regulation of bidirectional cargo transport.
Main Methods:
- Interferometric scattering (iSCAT) microscopy to track DDB complex dynamics in vitro.
- Development of a regression-based algorithm to classify motility states (processive, diffusive, stuck).
- In vitro reconstitution of DDB and DDB-kinesin-1 complexes.
Main Results:
- DDB complexes spend most of their time (65%) in processive stepping.
- Blocking the p150 subunit increased DDB diffusion and decreased processive stepping.
- p150 inhibition shifted DDB-kinesin-1 complex velocity, consistent with dynein entering a diffusive state.
- Data support a model where p150 allosterically activates dynein for processive stepping.
Conclusions:
- The dynactin p150 subunit acts as an allosteric activator of dynein, promoting processive stepping.
- Dynein's diffusive behavior arises from inactivation, not p150-mediated microtubule tethering.
- p150 promotes retrograde transport and is a potential target for transport regulation.
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