Molecular mechanism of extreme mechanostability in a pathogen adhesin
Author(s) -
Lukas F. Milles,
Klaus Schulten,
Hermann E. Gaub,
Rafael C. Bernardi
Publication year - 2018
Publication title -
science
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 12.556
H-Index - 1186
eISSN - 1095-9203
pISSN - 0036-8075
DOI - 10.1126/science.aar2094
Subject(s) - bacterial adhesin , force spectroscopy , peptide , biophysics , molecule , chemistry , hydrogen bond , molecular dynamics , covalent bond , atomic force microscopy , nanotechnology , biology , biochemistry , materials science , computational chemistry , virulence , gene , organic chemistry
High resilience to mechanical stress is key when pathogens adhere to their target and initiate infection. Using atomic force microscopy-based single-molecule force spectroscopy, we explored the mechanical stability of the prototypical staphylococcal adhesin SdrG, which targets a short peptide from human fibrinogen β. Steered molecular dynamics simulations revealed, and single-molecule force spectroscopy experiments confirmed, the mechanism by which this complex withstands forces of over 2 nanonewtons, a regime previously associated with the strength of a covalent bond. The target peptide, confined in a screwlike manner in the binding pocket of SdrG, distributes forces mainly toward the peptide backbone through an intricate hydrogen bond network. Thus, these adhesins can attach to their target with exceptionally resilient mechanostability, virtually independent of peptide side chains.
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