English

Flagella-like beating of a single microtubule

Biological Physics 2020-08-12 v1

Abstract

Kinesin motors can induce a buckling instability in a microtubule with a fixed minus end. Here we show that by modifying the surface with a protein-repellent functionalization and using clusters of kinesin motors, the microtubule can exhibit persistent oscillatory motion, resembling the beating of sperm flagella. The observed period is of the order of 1 min. From the experimental images we theoretically determine a distribution of motor forces that explains the observed shapes using a maximum likelihood approach. A good agreement is achieved with a small number of motor clusters acting simultaneously on a microtubule. The tangential forces exerted by a cluster are mostly in the range 0 - 8 pN towards the microtubule minus end, indicating the action of 1 or 2 kinesin motors. The lateral forces are distributed symmetrically and mainly below 10 pN, while the lateral velocity has a strong peak around zero. Unlike well-known models for flapping filaments, kinesins are found to have a strong "pinning" effect on the beating filaments. Our results suggest new strategies to utilize molecular motors in dynamic roles that depend sensitively on the stress built-up in the system.

Keywords

Cite

@article{arxiv.1903.09777,
  title  = {Flagella-like beating of a single microtubule},
  author = {Andrej Vilfan and Smrithika Subramani and Eberhard Bodenschatz and Ramin Golestanian and Isabella Guido},
  journal= {arXiv preprint arXiv:1903.09777},
  year   = {2020}
}