signalling dynamics · Bridging biophysics and cell biology: The role of G protein-coupled receptor conformations in signalling
Horizon 2020 — Marie Skłodowska-Curie Actions
- Duration
- 2020-01-01 → 2022-12-31
- EU contribution
- €271,733
- Participants
- 2
- Scheme
- MSCA-IF
Lines connect the coordinator with its partners.
Results in brief
Bridging biophysics and cell biology: The role of G protein-coupled receptor conformations in signalling
G protein coupled receptors (GPCRs) are a class of membrane receptors that transmits extracellular signals into the cell. They can be activated by a diverse set of ligands including small molecules, hormones, neurotransmitters, or photons and are targeted by a third of currently marketed drugs. Endogenous ligands and drugs may exhibit different efficacy profiles, ranging from full activation to complete inactivation of a signalling pathway. The key to the selective interaction with signalling partners in response to ligand binding lies in the conformational flexibility of the membrane receptors. Previous research has extensively studied the three-dimensional structures of GPCRs and their signalling. However, the link between active conformations and signalling is still missing. In this project, we are filling this gap by linking the three-dimensional structure of the receptor to signalling using a combination of biophysical experiments, computational analyses and high throughput signalling approaches. Our objectives are to further our understanding of the conformational changes in GPCRs and how they are linked to signalling. Which of the conformational changes observed are important for signalling and which ones are not? Which residues of the receptor are the most important ones for translating a ligand signal into an intracellular signal? Can this process be modified, either through changes in the ligand or through modulation of signal transduction at a later stage? Better understanding the molecular basis behind signalling, including the conformational changes that the receptor undergoes upon activation, are important for the development of better drugs with fewer side effects. Understanding how exactly ligand binding is converted into an intracellular signalling event will help researchers modify existing ligands or help them design new ligands with better characteristics. In conclusion, we have developed a framework for integrating pharmacological and structural data in this project. This allows us to determine which parts of the receptor are key for its functions, which parts are structurally important, pharmacologically important, or both. This improves our interpretation of both pharmacological and structural data. Our approach can be applied to other proteins where functional and structural data are available at similar resolution.
Data: CORDIS, © European Union
Project objective
G protein coupled receptors (GPCRs) are a class of membrane receptors that transmits extracellular signals into the cell. They can be activated by a diverse set of ligands including small molecules, hormones, neurotransmitters or photons and are targeted by a third of currently marketed drugs. Endogenous ligands and drugs may exhibit different efficacy profiles, ranging from full activation to complete inactivation of a signalling pathway. The key to the selective interaction with signalling partners in response to ligand binding lies in the conformational flexibility of the membrane receptors. Previous research has extensively studied the three-dimensional structures of GPCRs and their signalling. However, the link between active conformations and signalling is still missing.In the proposed project, first I will use exhaustive single-point mutagenesis coupled to functional assays to determine how the sequence and secondary structure of GPCRs contribute to signaling. Second, biophysical techniques studying protein conformations will help us to understand the connection between conformations and signalling outcome. These techniques give insights into the conformational fingerprints of the receptor. The link to signalling will be achieved by biasing the receptor towards a selected signalling partner either though addition of the selected signalling partner or the insertion of specific mutations tested in the first part of the project. Finally, I will use computational techniques to compare the activation of signalling partners in different GPCRs.With my research I hope to improve our understanding of the molecular basis of membrane protein function and contribute to the development of strategies for the design of more specific drugs with fewer side effects.
Original text from CORDIS.
Participants
- UNITED KINGDOM RESEARCH AND INNOVATION · SWINDONCoordinatorUnited Kingdom
- BOARD OF TRUSTEES OF THE LELAND STANFORD JUNIOR UNIVERSITY · STANFORDUnited States
Links
Data: CORDIS, © European Union
