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Walter, W. J.

Publications and source records attributed to Walter, W. J..

2 recordsLinked to original sources

Highly-parallel, microfluidics-based force spectroscopy on single motor proteins

Cytoskeletal motors transform chemical energy into mechanical work to drive essential cellular functions. Optical trapping experiments have provided crucial insights into the operation of these molecular machines under load. However, the throughput of such force spectroscopy experiments is typically limited to one measurement at a time. Here, we introduce a highly-parallel, microfluidics-based method that allows for rapid collection of force-dependent motility parameters of cytoskeletal motors with two orders of magnitude improvement in throughput compared to currently available methods. We apply tunable hydrodynamic forces to stepping kinesin-1 motors via DNA-tethered beads and utilize a large field of view to simultaneously track the velocities, run lengths and interaction times of hundreds of individual kinesin-1 molecules under varying resisting and assisting loads. Importantly, the 16-m long DNA tethers between the motors and the beads significantly reduces the vertical component of the applied force pulling the motors away from the microtubule. Our approach is readily applicable to other molecular systems and constitutes a new methodology for parallelized single-molecule force studies on cytoskeletal motors.

biophysics

Phototaxis of the unicellular red alga Cyanidioschyzon merolae is mediated by novel actin-driven tentacles

Phototaxis - which is the ability to move towards or away from a light source autonomously - is a common mechanism of unicellular algae. It evolved multiple times independently in different plant lineages1. As of yet, algal phototaxis has been mainly linked to the presence of cilia, the only known locomotive organelle in unicellular algae. Consequently, phototaxis was believed to be largely absent in red algae (Rhodophyta) that lack cilia in all stages of their life cycle1. Remarkably, the unicellular red alga Cyanidioschyzon merolae (C. merolae) is able to move towards the light. However, it has remained unclear how C. merolae can achieve movement, and the presence of a completely new mechanism was suggested2. Here we show that the basis of this movement are novel retractable projections that were termed tentacles due to their distinct morphology. The tentacles could be reproducibly induced within 20 minutes by increasing the salt concentration of the culture medium. Electron microscopy revealed filamentous structures inside the tentacles that we identified to be actin filaments. This is surprising as C. merolaes single actin gene was previously published to not be expressed3,4. Based on our findings, we propose a model for C. merolaes actin-driven but myosin-independent motility. To our knowledge, the described tentacles represent a novel motility mechanism.

cell biology