Bacteria break through one-micrometer-square passages by flagellar wrapping
Abstract
Abstract Confined spaces are omnipresent in the micro-environments, including soil aggregates and intestinal crypts, yet little is known about how bacteria behave under such conditions where movement is challenging due to spatial confinement that limited effective diffusion. Stinkbug symbiont Caballeronia insecticola navigates a narrow gut passage about one micrometer in diameter to reach the stinkbug’s symbiotic organ. Here, we developed a microfluidic device mimicking the host’s sorting organ, wherein bacterial cells are confined in a quasi-one-dimensional fashion, and revealed that this bacterium wraps flagellar filaments around its cell body like a screw thread to control fluid flow and generate propulsion for smooth and directional movement in narrow passages. Physical simulations and genetic experiments revealed that hook flexibility is essential for this wrapping; increasing hook rigidity impaired both wrapping motility and infectivity. Thus, flagellar wrapping likely represents an evolutionary innovation, enabling bacteria to break through confined environments using their motility machinery.
Article Details
Authors (12)
Aoba Yoshioka
Department of Engineering Science, Graduate School of Informatics and Engineering, The University of Electro-Communications
Yoshiki Y. Shimada
Toshihiro Omori
Naoki A. Uemura
Kazutaka Takeshita
Faculty of Bioresource Sciences, Akita Prefectural University
Kota Ishigami
Faculty of Agriculture, University of the Ryukyus
Hiroyuki Morimura
Biomanufacturing Process Research Center, National Institute of Advanced Industrial Science and Technology, Hokkaido Center
Maiko Furubayashi
Tetsuo Kan
Hirofumi Wada
Yoshitomo Kikuchi
Unit of Applied Biological Chemistry, Graduate School of Agriculture, Hokkaido University
Daisuke Nakane
Department of Engineering Science, Graduate School of Informatics and Engineering, The University of Electro-Communications