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2.
Nat Commun ; 14(1): 8182, 2023 Dec 11.
Article in English | MEDLINE | ID: mdl-38081900

ABSTRACT

In numerous insects, the olfactory receptor family forms a unique class of heteromeric cation channels. Recent progress in resolving the odorant receptor structures offers unprecedented opportunities for deciphering their molecular mechanisms of ligand recognition. Unexpectedly, these structures in apo or ligand-bound states did not reveal the pathway taken by the ligands between the extracellular space and the deep internal cavities. By combining molecular modeling with electrophysiological recordings, we identified amino acids involved in the dynamic entry pathway and the binding of VUAA1 to Drosophila melanogaster's odorant receptor co-receptor (Orco). Our results provide evidence for the exact location of the agonist binding site and a detailed and original mechanism of ligand translocation controlled by a network of conserved residues. These findings would explain the particularly high selectivity of Orcos for their ligands.


Subject(s)
Olfactory Receptor Neurons , Receptors, Odorant , Animals , Receptors, Odorant/genetics , Receptors, Odorant/metabolism , Drosophila melanogaster/metabolism , Ligands , Olfactory Receptor Neurons/metabolism , Drosophila/metabolism , Translocation, Genetic
3.
J Am Chem Soc ; 141(44): 17817-17829, 2019 11 06.
Article in English | MEDLINE | ID: mdl-31591893

ABSTRACT

Intrinsically disordered proteins (IDPs) are flexible biomolecules whose essential functions are defined by their dynamic nature. Nuclear magnetic resonance (NMR) spectroscopy is ideally suited to the investigation of this behavior at atomic resolution. NMR relaxation is increasingly used to detect conformational dynamics in free and bound forms of IDPs under conditions approaching physiological, although a general framework providing a quantitative interpretation of these exquisitely sensitive probes as a function of experimental conditions is still lacking. Here, measuring an extensive set of relaxation rates sampling multiple-time-scale dynamics over a broad range of crowding conditions, we develop and test an integrated analytical description that accurately portrays the motion of IDPs as a function of the intrinsic properties of the crowded molecular environment. In particular we observe a strong dependence of both short-range and long-range motional time scales of the protein on the friction of the solvent. This tight coupling between the dynamic behavior of the IDP and its environment allows us to develop analytical expressions for protein motions and NMR relaxation properties that can be accurately applied over a vast range of experimental conditions. This unified dynamic description provides new insight into the physical behavior of IDPs, extending our ability to quantitatively investigate their conformational dynamics under complex environmental conditions, and accurately predicting relaxation rates reporting on motions on time scales up to tens of nanoseconds, both in vitro and in cellulo.


Subject(s)
Intrinsically Disordered Proteins/chemistry , MAP Kinase Kinase 4/chemistry , Nucleoproteins/chemistry , Viral Proteins/chemistry , Animals , Nitrogen Isotopes/chemistry , Nuclear Magnetic Resonance, Biomolecular , Oocytes/chemistry , Protein Conformation , Protein Domains , Sendai virus/chemistry , Xenopus laevis
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