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Conflitti, P.

Publications and source records attributed to Conflitti, P..

2 recordsLinked to original sources

Beyond the 1:1 Ligand-Protein Paradigm: An In Silico Assay for Competitive Ligand Binding

Competitive binding assays (CBAs) are widely used in drug discovery to quantify and compare ligand/receptor affinities. However, their molecular interpretation is often limited by the inherent complexity of ligand-receptor interactions and the transient nature of binding events. All-atom molecular dynamics (MD) simulations offer valuable mechanistic insights in ligand binding studies, but remain computationally prohibitive for capturing the long-timescale, multiligand behavior characteristic of CBAs. Therefore, characterizing the molecular aspects of CBAs remains a fundamental challenge in molecular biophysics. Here, we introduce a coarse-grained MD (CGMD) approach capable of recapitulating CBA-like dynamics between ligands of opposing efficacy-- the full agonist NECA and the inverse agonist ZM241385-- at the adenosine A2A receptor, a prototypical G protein-coupled receptor and a key pharmacological target. By simulating ligand mixtures at varying molar ratios, we capture hallmark features of experimental CBAs, including spontaneous binding, unbinding, and direct competition at the orthosteric site. Our simulations reveal an extracellular vestibular site that modulates ligand access to the binding pocket. Occupation of this site by NECA facilitates ZM241385 entry and prolongs its residence time, revealing a cooperative mechanism within an otherwise competitive process. These findings offer a molecular perspective on lig- and competition at GPCRs and demonstrate the potential of CGMD as a viable method for probing multiligand dynamics in drug discovery.

biochemistry↗

Minute-timescale simulations of G Protein Coupled Receptor A2A activation mechanism reveals a receptor pseudo-active state

G protein coupled receptors (GPCRs) are membrane proteins of greatest pharmacological relevance, targeted by over one third of marketed drugs. These receptors are activated by orthosteric ligands and undergo large conformational changes that lead to coupling diverse effector proteins. To achieve a fine regulation of the drug pharmacological response, it is imperative to shed light on the yet poorly understood aspects of GPCRs activation. In this work, we elucidate the entire activation mechanism of the adenosine A2A receptor (A2AR), a class A GPCR, performing minute timescale molecular dynamics and free energy calculations. We have explored the entire conformational landscape of A2AR in its basal apo form and in differently ligated conditions, elucidating the ligand intrinsic activity and the receptors lowest energy functional states. Among these is a novel pseudo-active state (pAs) of the A2AR apo form stabilised by specific "microswitch" residues interactions, including the salt bridge between the class A conserved residues R5.66 and E6.30. In the pAs state, A2AR is able to couple {beta}-arrestin 1 over G proteins, providing unprecedented structural basis for receptor desensitization and G protein-alternative cellular pathways. Our simulation protocol is generalisable and can be applied to study the activation of any GPCR, resulting a precious tool for drug design and biased signaling studies.

biophysics↗