The strongest protein binder is surprisingly labile

Author:

Fernandez‐Calvo Alba1,Reifs Antonio1,Saa Laura2,Cortajarena Aitziber L.23ORCID,De Sancho David45ORCID,Perez‐Jimenez Raul13ORCID

Affiliation:

1. Center for Cooperative Research in Biosciences (CIC bioGUNE), Basque Research and Technology Alliance (BRTA) Derio Bizkaia Spain

2. Center for Cooperative Research in Biomaterials (CIC biomaGUNE), Basque Research and Technology Alliance (BRTA) Donostia‐San Sebastián Spain

3. Ikerbasque Foundation for Science Bilbao Spain

4. Polimero eta Material Aurreratuak: Fisika, Kimika eta Teknologia, Kimika Fakultatea, University of the Basque Country (UPV/EHU) San Sebastian Spain

5. Donostia International Physics Center (DIPC) San Sebastian Spain

Abstract

AbstractBacterial adhesins are cell‐surface proteins that anchor to the cell wall of the host. The first stage of infection involves the specific attachment to fibrinogen (Fg), a protein found in human blood. This attachment allows bacteria to colonize tissues causing diseases such as endocarditis. The study of this family of proteins is hence essential to develop new strategies to fight bacterial infections. In the case of the Gram‐positive bacterium Staphylococcus aureus, there exists a class of adhesins known as microbial surface components recognizing adhesive matrix molecules (MSCRAMMs). Here, we focus on one of them, the clumping factor A (ClfA), which has been found to bind Fg through the dock‐lock‐latch mechanism. Interestingly, it has recently been discovered that MSCRAMM proteins employ a catch‐bond to withstand forces exceeding 2 nN, making this type of interaction as mechanically strong as a covalent bond. However, it is not known whether this strength is an evolved feature characteristic of the bacterial protein or is typical only of the interaction with its partner. Here, we combine single‐molecule force spectroscopy, biophysical binding assays, and molecular simulations to study the intrinsic mechanical strength of ClfA. We find that despite the extremely high forces required to break its interactions with Fg, ClfA is not by itself particularly strong. Integrating the results from both theory and experiments we dissect contributions to the mechanical stability of this protein.

Funder

European Commission

Eusko Jaurlaritza

Publisher

Wiley

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