Scinovex
article Open AccessTop 1% cited

Regulation of protein-ligand binding affinity by hydrogen bond pairing

Science Advances · 2016 · Vol. 2(3) · pp. e1501240–e1501240
Deliang ChenNuman OezguenPetri UrvilColin G. FergusonSara M. DannTor Savidge

Abstract

Hydrogen (H)-bonds potentiate diverse cellular functions by facilitating molecular interactions. The mechanism and the extent to which H-bonds regulate molecular interactions are a largely unresolved problem in biology because the H-bonding process continuously competes with bulk water. This interference may significantly alter our understanding of molecular function, for example, in the elucidation of the origin of enzymatic catalytic power. We advance this concept by showing that H-bonds regulate molecular interactions via a hitherto unappreciated donor-acceptor pairing mechanism that minimizes competition with water. On the basis of theoretical and experimental correlations between H-bond pairings and their effects on ligand binding affinity, we demonstrate that H-bonds enhance receptor-ligand interactions when both the donor and acceptor have either significantly stronger or significantly weaker H-bonding capabilities than the hydrogen and oxygen atoms in water. By contrast, mixed strong-weak H-bond pairings decrease ligand binding affinity due to interference with bulk water, offering mechanistic insight into why indiscriminate strengthening of receptor-ligand H-bonds correlates poorly with experimental binding affinity. Further support for the H-bond pairing principle is provided by the discovery and optimization of lead compounds targeting dietary melamine and Clostridium difficile toxins, which are not realized by traditional drug design methods. Synergistic H-bond pairings have therefore evolved in the natural design of high-affinity binding and provide a new conceptual framework to evaluate the H-bonding process in biological systems. Our findings may also guide wider applications of competing H-bond pairings in lead compound design and in determining the origin of enzymatic catalytic power.

Monoclonal and Polyclonal Antibodies ResearchChemical Synthesis and AnalysisProtein Structure and DynamicsLigand (biochemistry)Hydrogen bondChemistryReceptorPairingBiophysicsBiochemistryBiologyMoleculePhysics

MeSH terms

Hydrogen BondingLigandsModels, ChemicalModels, MolecularProtein BindingProteinsDrug DesignMolecular Structure

Funding

  • National Natural Science Foundation of China
  • National Institute of Allergy and Infectious Diseases
  • National Institute of Diabetes and Digestive and Kidney Diseases
Citations
879
FWCI
14.52
field-weighted impact
References
54
Percentile
99%
vs. same field & year
Citations per year
References
Citation Network

How this paper connects to the literature. Drag to explore, click any node to open that paper.

Regulation of protein-ligand binding affinity by hydrogen bond pairing · Scinovex