Active matter invasion and morphogenesis

POSTER

Abstract

Interaction between active materials and the boundaries of geometrical confinement is key to many emergent phenomena in active systems. For living active matter consisting of animal cells or motile bacteria, the confinement boundary is often a deformable interface, and it has been unclear how activity-induced interface dynamics might lead to morphogenesis and pattern formation. Here we studied the evolution of bacterial active matter confined by a deformable boundary. We discovered that an ordered morphological pattern emerged at the interface characterized by periodically-spaced interfacial protrusions; behind the interfacial protrusions, bacterial swimmers self-organized into multicellular clusters displaying +1/2 nematic defects. Subsequently, a hierarchical sequence of transitions from interfacial protrusions to creeping branches allowed the bacterial active drop to rapidly invade surrounding space with a striking self-similar branch pattern. We found that this interface patterning is geometrically controlled by the local curvature of the interface, a phenomenon we denote as collective curvature sensing. Using a continuum active model, we revealed that the collective curvature sensing arises from enhanced active stresses near high-curvature regions, with the active length scale setting the characteristic distance between the interfacial protrusions. Our findings reveal a protrusion-to-branch transition as a unique mode of active matter invasion and suggest a new strategy to engineer pattern formation of active materials.

* This work was supported by the National Natural Science Foundation of China (NSFC No. 31971182, to Y.W.), the Research Grants Council of Hong Kong SAR (RGC Ref. No. RFS2021-4S04, 14306820, 14306820; to Y.W.). M.R.N. acknowledges the support of the Clarendon Fund Scholarships. https://www.pnas.org/doi/abs/10.1073/pnas.2219708120

Publication: Xu, Haoran, et al. "Geometrical control of interface patterning underlies active matter invasion." Proceedings of the National Academy of Sciences 120.30 (2023): e2219708120.

Presenters

  • Haoran Xu

    Chinese University of Hong Kong

Authors

  • Haoran Xu

    Chinese University of Hong Kong

  • Mehrana R Nejad

    University of Oxford

  • Julia Yeomans

    University of Oxford

  • Yilin Wu

    Chinese University of Hong Kong, The Chinese University of Hong Kong