H pilin cyclisation and pilus biogenesis are promiscuous but electrostatic perturbations impair conjugation efficiency
Abstract
Abstract During conjugation, plasmid DNA is transferred from donor to recipient bacteria via the plasmid-encoded mating pilus, formed as thin helical assemblies of polymerised pilin subunits. In the IncHI1 R27 plasmid-encoded pilus, the TrhA pilin undergoes cyclisation (via a peptide bond between Gly1 and Asp69), essential for conjugation. Gly1 and Asp69 are exposed on the pilus surface and conserved in all TrhA pilins in the Plascad database. Substituting Asp69 with Asn, Ala, Gly, or Arg does not prevent cyclisation or pilus formation, which remains structurally indistinguishable from the wild type. Conjugation efficiency of the Asp69 substitutions across multiple recipient species correlates with side chain size, in the order Asp69Asn > Asp69Ala > Asp69Gly. However, Asp69Arg, as well as Asp69Lys and Gly1Lys substitutions abolish conjugation, likely due to the positively charged pilus surface (opposite to the wild-type negative charge) forming unfavourable electrostatic interactions with the recipient outer membrane’s inner leaflet, composed solely of zwitterionic phosphatidylethanolamine (PE). Consistently, conjugation is rescued in recipients lacking PE. These findings indicate strong selective pressure to maintain Gly1 and Asp69, as efficient DNA transfer depends on precise electrostatic and steric constraints of the pilus surface.
Article Details
Authors (8)
Shan He
Department of Chemistry, The Hong Kong Branch of Chinese National Engineering Research Center for Tissue Restoration and Reconstruction, State Key Laboratory of Nervous System Disorder, Division of Life Science, and Department of Chemical and Biological Engineering
Naito Ishimoto
Rutherford Appleton Laboratory, Research Complex at Harwell
Joshua L. C. Wong
Department of Life Sciences, Imperial College London
Sophia David
Julia Sanchez-Garrido
Mikhail Bogdanov
Department of Biochemistry and Molecular Biology, The University of Texas Health Science Center, McGovern Medical School, 6431 Fannin St., Suite 6.204, Houston, Texas 77030, United States
Konstantinos Beis
Rutherford Appleton Laboratory, Research Complex at Harwell
Gad Frankel
Department of Life Sciences, Imperial College London