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Updated: Jun 16, 2026

Covalent Immobilization of Proteins for the Single Molecule Force Spectroscopy
Published on: August 20, 2018
Isopeptide bonds block the mechanical extension of pili in pathogenic Streptococcus pyogenes
Jorge Alegre-Cebollada1, Carmen L Badilla, Julio M Fernández
1Department of Biological Sciences, Columbia University, New York, New York 10027, USA. ja2544@columbia.edu
Abstract:
In the early stages of an infection, pathogenic bacteria use long fibrous structures known as pili as adhesive anchors for attachment to the host cells. These structures also play key roles in colony and biofilm formation. In all those processes, pili must withstand large mechanical forces. The pili of the nasty gram-positive human pathogen Streptococcus pyogenes are assembled as single, micrometer long tandem modular proteins of covalently linked repeats of pilin proteins. Here we use single molecule force spectroscopy techniques to study the mechanical properties of the major pilin Spy0128. In our studies, we engineer polyproteins containing repeats of Spy0128 flanked by the well characterized I27 protein which provides an unambiguous mechanical fingerprint. We find that Spy0128 is an inextensible protein, even when pulled at forces of up to 800 pN. We also found that this remarkable mechanical resilience, unique among the modular proteins studied to date, results from the strategically located intramolecular isopeptide bonds recently identified in the x-ray structure of Spy0128. Removal of the isopeptide bonds by mutagenesis readily allowed Spy0128 domains to unfold and extend, albeit at relatively high forces of 172 pN (N-terminal domain) or 250 pN (C-terminal domain). Our results show that in contrast to the elastic roles played by large tandem modular proteins such as titin and fibronectin, the giant pili of S. pyogenes evolved to abrogate mechanical extensibility, a property that may be crucial in the pathogenesis of this most virulent bacterium and, therefore, become the target of new therapeutic approaches against its infections.
Insights
Streptococcus pyogenes pili, essential for infection, are remarkably inextensible due to isopeptide bonds. This unique mechanical property may be key to the bacterium's virulence and a potential therapeutic target.
Area of Science:
- Microbiology
- Biophysics
- Structural Biology
Background:
- Pathogenic bacteria use pili for host cell attachment and biofilm formation.
- Pili must withstand significant mechanical forces during infection processes.
- Streptococcus pyogenes pili are assembled from tandem modular pilin proteins.
Purpose of the Study:
- To investigate the mechanical properties of the major pilin Spy0128 from Streptococcus pyogenes.
- To understand the structural basis for the mechanical resilience of S. pyogenes pili.
Main Methods:
- Single molecule force spectroscopy was employed.
- Polyproteins of Spy0128 repeats were engineered, flanked by the I27 protein for calibration.
- Mutagenesis was used to remove intramolecular isopeptide bonds.
Main Results:
- Spy0128 demonstrated remarkable inextensibility, resisting unfolding up to 800 pN.
- Intramolecular isopeptide bonds were identified as crucial for this mechanical resilience.
- Removal of isopeptide bonds allowed domain unfolding at 172 pN (N-terminal) and 250 pN (C-terminal).
Conclusions:
- S. pyogenes pili possess unique mechanical properties, differing from elastic proteins like titin.
- The inextensibility of S. pyogenes pili is attributed to intramolecular isopeptide bonds.
- This abrogated mechanical extensibility may be vital for S. pyogenes pathogenesis and offers a potential therapeutic target.
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