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Published on: May 19, 2016
Allosteric Regulation of Fibronectin/α5β1 Interaction by Fibronectin-Binding MSCRAMMs
Xiaowen Liang1, Brandon L Garcia1, Livia Visai2,3
1Center for Infectious and Inflammatory Diseases, Institute of Biosciences and Technology, Texas A&M Health Science Center, Houston, TX, 77030, United States of America.
Abstract:
Adherence of microbes to host tissues is a hallmark of infectious disease and is often mediated by a class of adhesins termed MSCRAMMs (Microbial Surface Components Recognizing Adhesive Matrix Molecules). Numerous pathogens express MSCRAMMs that specifically bind the heterodimeric human glycoprotein fibronectin (Fn). In addition to roles in adhesion, Fn-binding MSCRAMMs exploit physiological Fn functions. For example, several pathogens can invade host cells by a mechanism whereby MSCRAMM-bound Fn bridges interaction with α5β1 integrin. Here, we investigate two Fn-binding MSCRAMMs, FnBPA (Staphylococcus aureus) and BBK32 (Borrelia burgdorferi) to probe structure-activity relationships of MSCRAMM-induced Fn/α5β1integrin activation. Circular dichroism, fluorescence resonance energy transfer, and dynamic light scattering techniques uncover a conformational rearrangement of Fn involving domains distant from the MSCRAMM binding site. Surface plasmon resonance experiments demonstrate a significant enhancement of Fn/α5β1 integrin affinity in the presence of FnBPA or BBK32. Detailed kinetic analysis of these interactions reveal that this change in affinity can be attributed solely to an increase in the initial Fn/α5β1 on-rate and that this rate-enhancement is dependent on high-affinity Fn-binding by MSCRAMMs. These data implicate MSCRAMM-induced perturbation of specific intramolecular contacts within the Fn heterodimer resulting in activation by exposing previously cryptic α5β1 interaction motifs. By correlating structural changes in Fn to a direct measurement of increased Fn/α5β1 affinity, this work significantly advances our understanding of the structural basis for the modulation of integrin function by Fn-binding MSCRAMMs.
Insights
Microbial Surface Components Recognizing Adhesive Matrix Molecules (MSCRAMMs) bind fibronectin (Fn), enhancing its interaction with host cell integrins. This study reveals how MSCRAMMs like FnBPA and BBK32 structurally alter fibronectin to increase host cell adhesion.
Area of Science:
- Microbiology
- Biochemistry
- Structural Biology
Background:
- Microbial adherence to host tissues is crucial for infectious diseases, often mediated by Microbial Surface Components Recognizing Adhesive Matrix Molecules (MSCRAMMs).
- Many pathogens utilize MSCRAMMs to bind human fibronectin (Fn), a glycoprotein involved in cell adhesion and migration.
- Pathogenic Fn-binding MSCRAMMs can hijack host cell functions, such as promoting invasion via interaction with the α5β1 integrin.
Purpose of the Study:
- To investigate the structure-activity relationships of MSCRAMM-induced fibronectin (Fn)/α5β1 integrin activation.
- To elucidate the molecular mechanisms by which Fn-binding MSCRAMMs modulate Fn conformation and integrin binding.
Main Methods:
- Utilized circular dichroism, fluorescence resonance energy transfer, and dynamic light scattering to analyze Fn conformational changes.
- Employed surface plasmon resonance to quantify the affinity and kinetics of Fn/α5β1 integrin interactions in the presence of MSCRAMMs.
Main Results:
- Identified a MSCRAMM-induced conformational rearrangement in Fn, affecting domains distant from the binding site.
- Demonstrated a significant enhancement of Fn/α5β1 integrin affinity mediated by FnBPA and BBK32.
- Determined that the increased affinity is due to an accelerated on-rate of Fn/α5β1 integrin binding, dependent on high-affinity MSCRAMM binding.
Conclusions:
- MSCRAMMs perturb intramolecular contacts within Fn, exposing cryptic α5β1 integrin interaction motifs.
- This structural modulation leads to enhanced Fn/α5β1 integrin affinity and activation.
- The findings provide a structural basis for understanding how Fn-binding MSCRAMMs modulate integrin function during infection.
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