Binding Evolution of the Dengue Virus Envelope Against DC-SIGN: A Combined Approach of Phylogenetics and Molecular Dynamics Analyses Over 30 Years of Dengue Virus in Brazil

J Mol Biol. 2024 Jun 1;436(11):168577. doi: 10.1016/j.jmb.2024.168577. Epub 2024 Apr 18.

Abstract

The Red Queen Hypothesis (RQH), derived from Lewis Carroll's "Through the Looking-Glass", postulates that organisms must continually adapt in response to each other to maintain relative fitness. Within the context of host-pathogen interactions, the RQH implies an evolutionary arms race, wherein viruses evolve to exploit hosts and hosts evolve to resist viral invasion. This study delves into the dynamics of the RQH in the context of virus-cell interactions, specifically focusing on virus receptors and cell receptors. We observed multiple virus-host systems and noted patterns of co-evolution. As viruses evolved receptor-binding proteins to effectively engage with cell receptors, cells countered by altering their receptor genes. This ongoing mutual adaptation cycle has influenced the molecular intricacies of receptor-ligand interactions. Our data supports the RQH as a driving force behind the diversification and specialization of both viral and host cell receptors. Understanding this co-evolutionary dance offers insights into the unpredictability of emerging viral diseases and potential therapeutic interventions. Future research is crucial to dissect the nuanced molecular changes and the broader ecological consequences of this ever-evolving battle. Here, we combine phylogenetic inferences, structural modeling, and molecular dynamics analyses to describe the epidemiological characteristics of major Brazilian DENV strains that circulated from 1990 to 2022 from a combined perspective, thus providing us with a more detailed picture on the dynamics of such interactions over time.

Keywords: Red Queen Hypothesis; dengue envelope protein; dengue virus; viral evolution; viral phylogeny.

MeSH terms

  • Brazil
  • Cell Adhesion Molecules* / chemistry
  • Cell Adhesion Molecules* / genetics
  • Cell Adhesion Molecules* / metabolism
  • Dengue / virology
  • Dengue Virus* / genetics
  • Dengue Virus* / metabolism
  • Evolution, Molecular*
  • Host-Pathogen Interactions / genetics
  • Humans
  • Lectins, C-Type* / chemistry
  • Lectins, C-Type* / genetics
  • Lectins, C-Type* / metabolism
  • Molecular Dynamics Simulation*
  • Phylogeny*
  • Protein Binding
  • Receptors, Cell Surface* / chemistry
  • Receptors, Cell Surface* / genetics
  • Receptors, Cell Surface* / metabolism
  • Receptors, Virus / chemistry
  • Receptors, Virus / genetics
  • Receptors, Virus / metabolism
  • Viral Envelope / metabolism
  • Viral Envelope Proteins / chemistry
  • Viral Envelope Proteins / genetics
  • Viral Envelope Proteins / metabolism

Substances

  • Receptors, Cell Surface
  • Cell Adhesion Molecules
  • DC-specific ICAM-3 grabbing nonintegrin
  • Lectins, C-Type
  • Receptors, Virus
  • Viral Envelope Proteins