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February 21, 2026Biophysical Journal0 citations

BPS2026 – Enhanced processivity and collective force production of kinesins at low radial forces

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AHAndrew HensleyAYAhmet Yildiz

Key Points

  • This research examines how kinesin-1 behaves under varying radial forces during transport along microtubules.
  • Conducted optical trapping experiments using kinesin-1 linked to beads with a DNA handle.
  • Analyzed motility and force production of single and multiple kinesin-1 motors under different force conditions.
  • Reduced radial (z-axis) forces to observe effects on motor detachment.
  • Kinesin-1 exhibits improved processivity under low hindering loads without detaching easily.
  • Under assisting loads, kinesin-1 shows rapid disengagement, even with minimal z-forces.
  • Groups of kinesin-1 demonstrate strong, nearly proportional force production when working collectively.

Abstract

Kinesin-1 is a cytoskeletal motor that transports cargos toward the microtubule plus end. Optical trapping experiments have suggested that kinesin-1 behaves as a “slippery” motor, prone to rapid detachment and seemingly unable to work cooperatively to generate substantial collective forces. A likely explanation is that the radial ( z axis) forces present in standard bead-trapping assays accelerate motor dissociation from microtubules. To address this, we reduced the z-force by linking the trapped bead to the motor through a long DNA handle and then analyzed the motility and force output of both single and multiple kinesin-1 molecules. In this load regime, kinesin-1 withstands hindering loads without readily detaching, though it disengages rapidly under assisting loads even when z-forces are minimal. Moreover, we observe strong, nearly proportional force production by groups of kinesin-1. These results clarify how ensembles of kinesin-1 cooperate to perform functions that require more force than a single motor can produce.

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Cite This Study

Hensley et al. (2026) studied this question.

synapsesocial.com/papers/69990df65b97ab4c14ac2cb6https://doi.org/10.1016/j.bpj.2025.11.748
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