bioRxiv · 10.1101/2024.05.22.595351
MINFLUX Reveals Dynein Stepping in Live Neurons
Abstract
Dynein is the primary molecular motor responsible for retrograde intracellular transport of a variety of cargoes, performing successive nanometer-sized steps within milliseconds. Due to the limited spatiotemporal precision of established methods for molecular tracking, current knowledge of dynein stepping is essentially limited to slowed-down measurements in vitro. Here, we use MINFLUX fluorophore localization to directly track CRISPR/Cas9-tagged endogenous dynein with nanometer/millisecond precision in living primary neurons. We show that endogenous dynein primarily takes 8 nm steps, including frequent sideways steps but few backward steps. Strikingly, the majority of direction reversals between retrograde and anterograde movement occurred on the time scale of single steps (16 ms), suggesting a rapid regulatory reversal mechanism. Tug-of-war-like behavior during pauses or reversals was unexpectedly rare. By analyzing the dwell time between steps, we concluded that a single rate-limiting process underlies the dynein stepping mechanism whereby dynein consumes one adenosine 5-triphosphate (ATP) per step. Our study underscores the power of MINFLUX localization to elucidate the spatiotemporal changes underlying protein function in living cells.
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Schleske, J. M., Hubrich, J., Wirth, O., D'Este, E., Engelhardt, J., Hell, S. W.. 2024-05-23. MINFLUX Reveals Dynein Stepping in Live Neurons. https://doi.org/10.1101/2024.05.22.595351
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