Handover mechanism of the growing pilus by the bacterial outer-membrane usher FimD

被引:0
|
作者
Minge Du
Zuanning Yuan
Hongjun Yu
Nadine Henderson
Samema Sarowar
Gongpu Zhao
Glenn T. Werneburg
David G. Thanassi
Huilin Li
机构
[1] Van Andel Research Institute,Structural Biology Program
[2] Stony Brook University,Department of Molecular Genetics and Microbiology
[3] Stony Brook University,Center for Infectious Diseases
[4] Stony Brook University,Department of Biochemistry and Cell Biology
[5] Van Andel Research Institute,David Van Andel Advanced Cryo
[6] Glickman Urological and Kidney Institute,Electron Microscopy Suite
[7] Cleveland Clinic,Department of Urology
来源
Nature | 2018年 / 562卷
关键词
Chaperone Subunit; Pilus Fiber; Subunit Polymerization; Pilus Assembly; Chaperone FimC;
D O I
暂无
中图分类号
学科分类号
摘要
Pathogenic bacteria such as Escherichia coli assemble surface structures termed pili, or fimbriae, to mediate binding to host-cell receptors1. Type 1 pili are assembled via the conserved chaperone–usher pathway2–5. The outer-membrane usher FimD recruits pilus subunits bound by the chaperone FimC via the periplasmic N-terminal domain of the usher. Subunit translocation through the β-barrel channel of the usher occurs at the two C-terminal domains (which we label CTD1 and CTD2) of this protein. How the chaperone–subunit complex bound to the N-terminal domain is handed over to the C-terminal domains, as well as the timing of subunit polymerization into the growing pilus, have previously been unclear. Here we use cryo-electron microscopy to capture a pilus assembly intermediate (FimD–FimC–FimF–FimG–FimH) in a conformation in which FimD is in the process of handing over the chaperone-bound end of the growing pilus to the C-terminal domains. In this structure, FimF has already polymerized with FimG, and the N-terminal domain of FimD swings over to bind CTD2; the N-terminal domain maintains contact with FimC–FimF, while at the same time permitting access to the C-terminal domains. FimD has an intrinsically disordered N-terminal tail that precedes the N-terminal domain. This N-terminal tail folds into a helical motif upon recruiting the FimC-subunit complex, but reorganizes into a loop to bind CTD2 during handover. Because both the N-terminal and C-terminal domains of FimD are bound to the end of the growing pilus, the structure further suggests a mechanism for stabilizing the assembly intermediate to prevent the pilus fibre diffusing away during the incorporation of thousands of subunits.
引用
收藏
页码:444 / 447
页数:3
相关论文
共 50 条
  • [1] Handover mechanism of the growing pilus by the bacterial outer-membrane usher FimD
    Du, Minge
    Yuan, Zuanning
    Yu, Hongjun
    Henderson, Nadine
    Sarowar, Samema
    Zhao, Gongpu
    Werneburg, Glenn T.
    Thanassi, David G.
    Li, Huilin
    NATURE, 2018, 562 (7727) : 444 - +
  • [2] Handover mechanism of the growing pilus by the bacterial outer-membrane usher FimD
    Du, Minge
    FASEB JOURNAL, 2019, 33
  • [3] OUTER-MEMBRANE PAPC MOLECULAR USHER DISCRIMINATELY RECOGNIZES PERIPLASMIC CHAPERONE PILUS SUBUNIT COMPLEXES
    DODSON, KW
    JACOBDUBUISSON, F
    STRIKER, RT
    HULTGREN, SJ
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1993, 90 (08) : 3670 - 3674
  • [4] MECHANISM OF ACTION OF INHIBITORS FOR BACTERIAL OUTER-MEMBRANE
    TOMITA, F
    YOKOTA, A
    NIPPON NOGEIKAGAKU KAISHI-JOURNAL OF THE JAPAN SOCIETY FOR BIOSCIENCE BIOTECHNOLOGY AND AGROCHEMISTRY, 1991, 65 (06): : 998 - 1002
  • [5] Pilus biogenesis at the outer membrane of bacterial pathogens
    Waksman, G.
    ACTA CRYSTALLOGRAPHICA A-FOUNDATION AND ADVANCES, 2014, 70 : C574 - C574
  • [6] Analysis of the requirements for pilus biogenesis at the outer membrane usher and the function of the usher C-terminus
    So, SSK
    Thanassi, DG
    MOLECULAR MICROBIOLOGY, 2006, 60 (02) : 364 - 375
  • [7] SECRETION ACROSS THE BACTERIAL OUTER-MEMBRANE
    WANDERSMAN, C
    TRENDS IN GENETICS, 1992, 8 (09) : 317 - 322
  • [8] TRANSPORT ACROSS THE BACTERIAL OUTER-MEMBRANE
    NIKAIDO, H
    JOURNAL OF BIOENERGETICS AND BIOMEMBRANES, 1993, 25 (06) : 581 - 589
  • [9] Nitazoxanide Inhibits Pilus Biogenesis by Interfering with Folding of the Usher Protein in the Outer Membrane
    Chahales, Peter
    Hoffman, Paul S.
    Thanassi, David G.
    ANTIMICROBIAL AGENTS AND CHEMOTHERAPY, 2016, 60 (04) : 2028 - 2038
  • [10] Advances in understanding bacterial outer-membrane biogenesis
    Ruiz, N
    Kahne, D
    Silhavy, TJ
    NATURE REVIEWS MICROBIOLOGY, 2006, 4 (01) : 57 - 66