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Antiparallel stacking of Csu pili drives Acinetobacter baumannii 3D biofilm assembly
Joint Biotechnology Laboratory, MediCity, Faculty of Medicine, University of Turku; Tykistökatu 6A, Turku, Finland.
Joint Biotechnology Laboratory, MediCity, Faculty of Medicine, University of Turku; Tykistökatu 6A, Turku, Finland; Department of Medicine, Duke University Medical Center, Durham, North Carolina, USA; Howard Hughes Medical Institute, Duke University Medical Center, NC, Durham, United States.
Department of Biochemistry and Pharmacology, Bio21 Molecular Science and Biotechnology Institute, University of Melbourne, Parkville, Australia; Australian Research Council (ARC) Centre for Cryo-Electron Microscopy of Membrane Proteins, Bio21 Molecular Science and Biotechnology Institute, University of Melbourne, Parkville, Australia.
Joint Biotechnology Laboratory, MediCity, Faculty of Medicine, University of Turku; Tykistökatu 6A, Turku, Finland.
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2026 (English)In: Nature Communications, E-ISSN 2041-1723, Vol. 17, no 1, article id 2508Article in journal (Refereed) Published
Abstract [en]

Many Gram-negative nosocomial pathogens rely on adhesive filaments, known as archaic chaperone-usher pili, to establish stress- and drug-resistant, multi-layered biofilms. Here, we uncover the mechanism by which these pili build three-dimensional (3D) biofilm architectures. In situ analyses of Acinetobacter baumannii biofilms using electron microscopy (EM) reveal an extensive network of ultrathin, flat stacks of archaic Csu pili interconnecting bacterial cells in 3D space. Cryo-EM structures of a single native pilus, pilus pairs, and two types of multi-pilus stacks show that the pili pack into antiparallel sheets, with their rods connected laterally by junctions at their zigzag corners. This antiparallel arrangement ensures that contacts form primarily between pili from interacting cells rather than pili from the same cell. With a remarkably short helical repeat, archaic chaperone-usher pili spontaneously establish a high density of junctions that determines the biofilm’s 3D architecture. Our findings may help develop new therapies against multidrug-resistant bacterial infections by targeting pilus-pilus interactions.

Place, publisher, year, edition, pages
Springer Nature, 2026. Vol. 17, no 1, article id 2508
National Category
Microbiology in the Medical Area Cell and Molecular Biology
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URN: urn:nbn:se:umu:diva-251763DOI: 10.1038/s41467-026-68860-zISI: 001717488500001PubMedID: 41654547Scopus ID: 2-s2.0-105033457664OAI: oai:DiVA.org:umu-251763DiVA, id: diva2:2051389
Funder
Swedish Research Council, 2019-01720The Kempe Foundations, SMK21-0076Umeå University, 2021-2023Umeå University, 2020-06136Available from: 2026-04-08 Created: 2026-04-08 Last updated: 2026-04-08Bibliographically approved

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Ahmad, IrfanUhlin, Bernt Eric

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Umeå Centre for Microbial Research (UCMR)Department of Molecular Biology (Faculty of Medicine)Department of Molecular Biology (Faculty of Science and Technology)
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