English

Surfing on metachronal waves: ciliary transport by inertial coasting

Biological Physics 2026-03-12 v1 Fluid Dynamics

Abstract

Motile cilia drive biological fluid transport through whip-like beating motions that synchronize into metachronal waves. The lengths of these cilia span three orders of magnitude, from microns in human airways to millimeters in ctenophores. While recent studies have considered ciliary flows at intermediate Reynolds numbers, the effect of inertia on coordinated particle transport remains unexplored. Here, we address this gap using "Pufflets," the inertial counterparts of Stokeslets. These Pufflets describe rapidly accelerating flows generated by short-lived impulses, encoded by spatiotemporally singular momentum injections. To produce such rapid impulses experimentally, we designed an Atwood machine that generates long-lived Pufflet flows, which we capture with high-speed PIV measurements that agree well with analytical theory and simulations. Moreover, we find that pairs of equal and opposite Pufflets can drive net particle displacements and mixing due to time reversal symmetry breaking, which would be impossible in Stokes flow. Finally, we consider metachronal waves of Pufflets. Remarkably, we discover that particles can surf on these waves by coasting inertially from one cilium to the next, leading to highly efficient particle transport. This work paves the way toward understanding rapidly accelerating flows and collective transport driven by biological and artificial cilia.

Keywords

Cite

@article{arxiv.2603.11020,
  title  = {Surfing on metachronal waves: ciliary transport by inertial coasting},
  author = {Rafał Błaszkiewicz and Margot Young and Albane Théry and Talia Calazans and Yoichiro Mori and Maciej Lisicki and Arnold J. T. M. Mathijssen},
  journal= {arXiv preprint arXiv:2603.11020},
  year   = {2026}
}

Comments

21 pages, 4 figures