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Baranov, M. S.

Publications and source records attributed to Baranov, M. S..

2 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↗

NanoFAST: Structure-based design of a small fluorogen-activating protein with only 98 amino acids

One of the essential characteristics of any tag used in bioscience and medical applications is its size. The larger the label, the more it may affect the studied object, and the more it may distort its behavior. In this paper, using NMR spectroscopy and X-ray crystallography, we have studied the structure of fluorogen-activating protein FAST both in the apo form and in complex with the fluorogen. We shown that significant change in the protein occurs upon interaction with the ligand. While the protein is completely ordered in the complex, its apo form is characterized by higher mobility and disordering of its N-terminus. We used structural information to design the shortened FAST (which we named nanoFAST) by truncating 26 N-terminal residues. Thus, we created the shortest genetically encoded tag among all known fluorescent and fluorogen-activating proteins, which is composed of only 98 amino acids.

biochemistry↗