Molecular determinants of antagonist interactions with chemokine receptors CCR2 and CCR5
John R D Dawson1, Grant M Wadman1, Penglie Zhang2
1Skaggs School of Pharmacy and Pharmaceutical Sciences, University of California San Diego, La Jolla, CA, USA.
Abstract:
By driving monocyte chemotaxis, the chemokine receptor CCR2 shapes inflammatory responses and the formation of tumor microenvironments. This makes it a promising target in inflammation and immuno-oncology; however, despite extensive efforts, there are no FDA-approved CCR2-targeting therapeutics. Cited challenges include the redundancy of the chemokine system, suboptimal properties of compound candidates, and species differences that confound the translation of results from animals to humans. Structure-based drug design can rationalize and accelerate the discovery and optimization of CCR2 antagonists to address these challenges. The prerequisites for such efforts include an atomic-level understanding of the molecular determinants of action of existing antagonists. In this study, using molecular docking and artificial-intelligence-powered compound library screening, we uncover the structural principles of small molecule antagonism and selectivity towards CCR2 and its sister receptor CCR5. CCR2 orthosteric inhibitors are shown to universally occupy an inactive-state-specific tunnel between receptor helices 1 and 7; we also discover an unexpected role for an extra-helical groove accessible through this tunnel, suggesting its potential as a new targetable interface for CCR2 and CCR5 modulation. By contrast, only shape complementarity and limited helix 8 hydrogen bonding govern the binding of various chemotypes of allosteric antagonists. CCR2 residues S1012.63 and V2446.36 are implicated as determinants of CCR2/CCR5 and human/mouse orthosteric and allosteric antagonist selectivity, respectively, and the role of S1012.63 is corroborated through experimental gain-of-function mutagenesis. We establish a critical role of induced fit in antagonist recognition, reveal strong chemotype selectivity of existing structures, and demonstrate the high predictive potential of a new deep-learning-based compound scoring function. Finally, this study expands the available CCR2 structural landscape with computationally generated chemotype-specific models well-suited for structure-based antagonist design.
Insights
Researchers uncovered structural principles for CCR2 antagonists, identifying a new targetable groove and key residues for selectivity. This advances structure-based drug design for inflammation and immuno-oncology therapies.
Area of Science:
- * Pharmacology
- * Structural Biology
- * Computational Chemistry
Background:
- * Chemokine receptor CCR2 is crucial for inflammation and tumor microenvironments.
- * CCR2 antagonists are sought for immuno-oncology and inflammation but face development challenges.
- * Structure-based drug design requires understanding molecular determinants of antagonist action.
Conclusions:
- * Novel structural insights into CCR2 antagonism and selectivity have been uncovered.
- * A new targetable interface for CCR2 and CCR5 modulation was identified.
- * Computationally generated models facilitate structure-based antagonist design for CCR2.
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