Evolution of chemokine receptors is driven by mutations in the sodium binding site
Bruck Taddese1, Madeline Deniaud1, Antoine Garnier1
1Laboratoire MITOVASC, UMR CNRS 6015 - INSERM 1083, Université d'Angers, Angers, France.
Abstract:
Chemokines and their receptors (members of the GPCR super-family) are involved in a wide variety of physiological processes and diseases; thus, understanding the specificity of the chemokine receptor family could help develop new receptor specific drugs. Here, we explore the evolutionary mechanisms that led to the emergence of the chemokine receptors. Based on GPCR hierarchical classification, we analyzed nested GPCR sets with an eigen decomposition approach of the sequence covariation matrix and determined three key residues whose mutation was crucial for the emergence of the chemokine receptors and their subsequent divergence into homeostatic and inflammatory receptors. These residues are part of the allosteric sodium binding site. Their structural and functional roles were investigated by molecular dynamics simulations of CXCR4 and CCR5 as prototypes of homeostatic and inflammatory chemokine receptors, respectively. This study indicates that the three mutations crucial for the evolution of the chemokine receptors dramatically altered the sodium binding mode. In CXCR4, the sodium ion is tightly bound by four protein atoms and one water molecule. In CCR5, the sodium ion is mobile within the binding pocket and moves between different sites involving from one to three protein atoms and two to five water molecules. Analysis of chemokine receptor evolution reveals that a highly constrained sodium binding site characterized most ancient receptors, and that the constraints were subsequently loosened during the divergence of this receptor family. We discuss the implications of these findings for the evolution of the chemokine receptor functions and mechanisms of action.
Insights
Evolution of chemokine receptors involved three key mutations altering the allosteric sodium binding site. This shift influenced receptor divergence into homeostatic and inflammatory types, impacting drug development.
Area of Science:
- Biochemistry
- Evolutionary Biology
- Pharmacology
Background:
- Chemokine receptors, part of the G protein-coupled receptor (GPCR) superfamily, regulate physiological processes and diseases.
- Understanding chemokine receptor specificity is crucial for developing targeted therapeutics.
Purpose of the Study:
- To investigate the evolutionary mechanisms behind chemokine receptor emergence and divergence.
- To identify key molecular changes driving the evolution of these receptors.
Main Methods:
- GPCR hierarchical classification and eigen decomposition of sequence covariation matrices.
- Molecular dynamics simulations of CXCR4 (homeostatic) and CCR5 (inflammatory) receptors.
- Analysis of allosteric sodium binding site mutations and their impact.
Main Results:
- Three critical residue mutations were identified as essential for chemokine receptor evolution and divergence.
- These mutations significantly altered the sodium ion binding mode within the allosteric site.
- Ancient receptors featured constrained sodium binding, which loosened during divergence.
Conclusions:
- The evolution of chemokine receptors is linked to significant changes in sodium ion binding dynamics.
- These evolutionary shifts in receptor structure and function have implications for drug discovery targeting chemokine pathways.
Related Concept Videos
Viral Mutations
The Evidence for Evolution
Mutations
Conserved Binding Sites
Binding sites are often located in large pockets, and if their location on a protein’s surface is unknown, it can be predicted using various approaches. The energetic method computationally...
Convergent Evolution
Gene Evolution - Fast or Slow?
In contrast, regions which code...


