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Kuzmichev, P.

Publications and source records attributed to Kuzmichev, P..

3 recordsLinked to original sources

Monitoring GPCR Conformation with GFP-Inspired Dyes

Solvatochromic compounds have emerged as valuable environment-sensitive probes for biological research, with the chromophore of the green fluorescent protein (GFP) being a well-studied example. In this study, we demonstrate that synthetic analogues of the GFP chromophore can be used to investigate ligand-induced conformational changes in proteins. We synthesized thiol-reactive derivatives of four analogues of the GFP chromophore that exhibit notable solvatochromism. We used these derivatives to label two proteins: the soluble calcium sensor recoverin (Rec) and the transmembrane G protein-coupled A2A adenosine receptor (A2AAR), via cysteines located or introduced in the regions that undergo structural changes upon ligand binding. Two of these dyes showed Ca2+-induced fluorescence changes when attached to Rec. Notably, our best-performing dye, DyeC, when attached to A2AAR, revealed agonist-induced changes in both fluorescence intensity and shape of the emission spectrum. Molecular dynamics (MD) simulations provided mechanistic insights into these changes showing the activation of A2AAR transfers DyeC to a more confined and more hydrophilic environment. Additionally, an allosteric modulator, HMA, induces changes in DyeC fluorescence spectra, indicating a distinct receptor conformation from apo, antagonist, or agonist-bound receptors. Our study demonstrates that GFP-inspired dyes are effective for detecting structural changes in GPCR (G protein-coupled receptors), with advantages such as the ability to perform both intensity-based and ratiometric tracking, red-shifted fluorescence spectra, high extinction coefficient, and sensitivity to allosteric modulation. These dyes expand the toolbox for tracking ligand-induced changes and facilitate new insights into conformational changes induced by allosteric modulators in GPCRs.

biophysics↗

Functional GPCR expression in eukaryotic LEXSY system

G protein-coupled receptors (GPCRs) represent an important class of drug targets, and their structural studies facilitate rational drug discovery. However, atomic structures of only about 20% of human GPCRs have been solved to date. Recombinant production of GPCRs for structural studies at a large scale is challenging due to their low expression levels and stability. Here we tested the eukaryotic system LEXSY (Leishmania tarentolae) for GPCR production. We expressed the human A2A adenosine receptor (A2AAR) in LEXSY, purified it, and compared with the same receptor produced in insect cells, which is the most popular expression system for structural studies of GPCRs. The A2AAR purified from both expression systems showed similar purity, stability, ligand-induced conformational changes and structural dynamics, with a remarkably higher protein yield in the case of LEXSY expression.

biophysics↗

Sub-millisecond conformational dynamics of the A2A adenosine receptor revealed by single-molecule FRET

The complex pharmacology of G-protein-coupled receptors (GPCRs) is defined by their multi-state conformational dynamics. Single-molecule Forster Resonance Energy Transfer (smFRET) is well-suited to quantify dynamics for individual protein molecules, however, its application to GPCRs is challenging; therefore, smFRET has been limited to studies of interreceptor interactions in cellular membranes and receptors in detergent environments. Here, we performed smFRET experiments on functionally active human A2A adenosine receptor (A2AAR) molecules embedded in freely diffusing lipid nanodiscs to study their intramolecular conformational dynamics. We propose a dynamic model of A2AAR activation that involves a slow (>2 ms) exchange between the active-like and inactive-like conformations in both apo and antagonist-bound A2AAR, explaining the receptors constitutive activity. For the agonist-bound A2AAR, we detected faster (390{+/-}80 s) ligand efficacy-dependent dynamics. This work establishes a general smFRET platform for GPCR investigations that can potentially be used for drug screening and/or mechanism-of-action studies.

biophysics↗