4ayf Citations

Allosteric mechanism controls traffic in the chaperone/usher pathway.

Structure 20 1861-71 (2012)
Related entries: 4ay0, 4az8, 4b0e, 4b0m

Cited: 17 times
EuropePMC logo PMID: 22981947

Abstract

Many virulence organelles of Gram-negative bacterial pathogens are assembled via the chaperone/usher pathway. The chaperone transports organelle subunits across the periplasm to the outer membrane usher, where they are released and incorporated into growing fibers. Here, we elucidate the mechanism of the usher-targeting step in assembly of the Yersinia pestis F1 capsule at the atomic level. The usher interacts almost exclusively with the chaperone in the chaperone:subunit complex. In free chaperone, a pair of conserved proline residues at the beginning of the subunit-binding loop form a "proline lock" that occludes the usher-binding surface and blocks usher binding. Binding of the subunit to the chaperone rotates the proline lock away from the usher-binding surface, allowing the chaperone-subunit complex to bind to the usher. We show that the proline lock exists in other chaperone/usher systems and represents a general allosteric mechanism for selective targeting of chaperone:subunit complexes to the usher and for release and recycling of the free chaperone.

Articles - 4ayf mentioned but not cited (1)

  1. Innovative IgG Biomarkers Based on Phage Display Microbial Amyloid Mimotope for State and Stage Diagnosis in Alzheimer's Disease. De Plano LM, Carnazza S, Franco D, Rizzo MG, Conoci S, Petralia S, Nicoletti A, Zappia M, Campolo M, Esposito E, Cuzzocrea S, Guglielmino SPP. ACS Chem Neurosci 11 1013-1026 (2020)


Reviews citing this publication (6)

Articles citing this publication (10)

  1. Maturation of the Mfa1 Fimbriae in the Oral Pathogen Porphyromonas gingivalis. Lee JY, Miller DP, Wu L, Casella CR, Hasegawa Y, Lamont RJ. Front Cell Infect Microbiol 8 137 (2018)
  2. Pilicides inhibit the FGL chaperone/usher assisted biogenesis of the Dr fimbrial polyadhesin from uropathogenic Escherichia coli. Piatek R, Zalewska-Piatek B, Dzierzbicka K, Makowiec S, Pilipczuk J, Szemiako K, Cyranka-Czaja A, Wojciechowski M. BMC Microbiol 13 131 (2013)
  3. Structural Insight into Archaic and Alternative Chaperone-Usher Pathways Reveals a Novel Mechanism of Pilus Biogenesis. Pakharukova N, Garnett JA, Tuittila M, Paavilainen S, Diallo M, Xu Y, Matthews SJ, Zavialov AV. PLoS Pathog 11 e1005269 (2015)
  4. Molecular mechanism of bacterial type 1 and P pili assembly. Busch A, Phan G, Waksman G. Philos Trans A Math Phys Eng Sci 373 20130153 (2015)
  5. A review on pilus assembly mechanisms in Gram-positive and Gram-negative bacteria. Shanmugasundarasamy T, Karaiyagowder Govindarajan D, Kandaswamy K. Cell Surf 8 100077 (2022)
  6. Archaic chaperone-usher pili self-secrete into superelastic zigzag springs. Pakharukova N, Malmi H, Tuittila M, Dahlberg T, Ghosal D, Chang YW, Myint SL, Paavilainen S, Knight SD, Lamminmäki U, Uhlin BE, Andersson M, Jensen G, Zavialov AV. Nature 609 335-340 (2022)
  7. Ordered and ushered; the assembly and translocation of the adhesive type I and p pili. Lillington J, Waksman G. Biology (Basel) 2 841-860 (2013)
  8. Optimised Heterologous Expression and Functional Analysis of the Yersinia pestis F1-Capsular Antigen Regulator Caf1R. Gahlot DK, Ifill G, MacIntyre S. Int J Mol Sci 22 9805 (2021)
  9. Archaic and alternative chaperones preserve pilin folding energy by providing incomplete structural information. Pakharukova N, McKenna S, Tuittila M, Paavilainen S, Malmi H, Xu Y, Parilova O, Matthews S, Zavialov AV. J Biol Chem 293 17070-17080 (2018)
  10. Enterotoxigenic Escherichia coli CS1 pilus: not one structure but several. Forest KT. J Bacteriol 195 1357-1359 (2013)