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Goncharuk, S. A.

Publications and source records attributed to Goncharuk, S. A..

4 recordsLinked to original sources

Structural Basis for the transmembrane signaling and antidepressant-induced activation of the receptor tyrosine kinase TrkB

Neurotrophin receptors of the Trk family are involved in the regulation of brain development and neuroplasticity, and therefore can serve as targets for anti-cancer and stroke-recovery drugs, antidepressants, and many others. The structures of Trk protein domains in various states upon activation need to be elucidated to allow rational drug design. However, little is known about the conformations of the transmembrane and juxtamembrane domains of Trk receptors. In the present study, we employed NMR spectroscopy to solve the structure of the TrkB dimeric transmembrane domain in the lipid environment. We verified the structure using mutagenesis and confirmed that the conformation corresponds to the active state of the receptor. Subsequent study of TrkB interaction with the antidepressant drug fluoxetine, and the antipsychotic drug chlorpromazine, provided a clear self-consistent model, describing the mechanism by which fluoxetine activates the receptor by binding to its transmembrane domain.

biochemistry↗

Structural basis for the ligand promiscuity of the neofunctionalized, carotenoid-binding fasciclin domain protein AstaP

Fasciclins (FAS1) are ancient adhesion protein domains found across different phyla from bacteria to humans, with no common small ligand binding function reported. A unique FAS1-containing astaxanthin-binding protein (AstaP) from green algae can efficiently bind an unusually broad repertoire of carotenoids (astaxanthin, zeaxanthin, canthaxanthin, {beta}-carotene), but the underlying mechanism is largely unknown. Here we dissect the structural basis for the ligand binding promiscuity of AstaP-orange1 (AstaPo1) by determining its solution NMR structure in complex with its natural ligand, astaxanthin (AXT), and validate this structure by SAXS, calorimetry, optical spectroscopy and mutagenesis data. While the unstructured tails of AstaPo1 are not essential for carotenoid binding, they enhance protein solubility. The a1-a2 helices of the AstaPo1 FAS1 domain embrace the carotenoid polyene like a jaw, organizing a conserved hydrophobic tunnel, too short to prevent the AXT {beta}-ionone rings from protruding on both sides of the tunnel, thereby not imposing specificity restrictions. The only specific protein-AXT interactions involve H-bonds between the oxygenated groups on AXT and a peripheral Gln56 residue. Remarkably, mapping of this and other AXT-contacting AstaPo1 residues revealed their different conservation in AstaP orthologs with the tentative carotenoid-binding function and in FAS1 proteins in general, supporting neofunctionalization of AstaPs within green algae. Correspondingly, a cyanobacterial homolog with a similar domain structure cannot bind carotenoids due to subtle differences in residues decorating the tunnel. These structure-activity relationships inform the sequence-based prediction of the carotenoid-binding FAS1 members. SIGNIFICANCEA water-soluble astaxanthin-binding protein (AstaP) is a photoprotective protein in green algae helping them to tolerate stress conditions. While belonging to a ubiquitous protein family sharing an ancient structural domain, fasciclin, involved in cell adhesion, AstaP possesses an outstanding ability to bind carotenoid pigments of a different type, which are potent antioxidants. To understand the molecular basis for such carotenoid-binding promiscuity of AstaP, here we determined its spatial structure - the first structure of a carotenoid-protein complex solved by nuclear magnetic resonance spectroscopy. Together with biochemical and sequence conservation analyses, our data illustrate a remarkable case of neofunctionalization of the ancient protein domain and pave the way for its bioengineering and practical use as antioxidant transporter for biomedical applications.

biochemistry↗

Neurotrophin signaling is modulated by specific transmembrane domain interactions

The neurotrophin receptors p75 and TrkA play an important role in the development and survival of the nervous system. Biochemical data suggest that p75 and TrkA regulate the activities of each other. For instance, p75 is able to regulate the response of TrkA to lower concentrations of NGF and TrkA promotes p75 shedding by -secretases in a ligand-dependent manner. The current model is that p75 and TrkA are regulated by means of a physical direct interaction, however the nature of such interaction has been elusive so far. Here using NMR in micelles, multiscale molecular dynamics (MD), FRET and functional studies we identified and characterized the direct interaction between TrkA and p75 through the transmembrane domains (TMDs). MD of p75-TMD mutants suggests that although the interaction between TrkA and p75 TMDs is maintained, a specific protein interface is required to facilitate TrkA active homodimerization in the presence of NGF. The same mutations in the TMD protein interface of p75 reduced the activation of TrkA by NGF and cell differentiation. In summary we provide a structural model of the p75/TrkA receptor complex stabilized by transmembrane domain interactions.

biochemistry↗

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↗