Active Cells, Biochemistry & Physiology Diabetes, Hormones & Metabolism

Exploiting a novel molecular toolkit to explore cell type specific adenosine receptor pharmacology and regulation at endogenous levels of expression.

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Every cell in the body talks to its neighbours using surface proteins called GPCRs, and this team has built a new molecular toolkit to watch those conversations happen in real human tissue rather than in artificial lab dishes. The problem is that most studies of adenosine receptors—GPCRs involved in heart disease, asthma, and cancer—have used genetically engineered cells that overproduce the receptors, which can force them to behave abnormally. This creates a blind spot: drugs that work in a dish often fail in patients because they hit the right receptor in the wrong cell type, causing side effects. The researchers need to see how these receptors naturally cluster together on the surfaces of real human cells, and how that clustering changes under stress like low oxygen or inflammation. If successful, this work could reveal why certain drugs work in some tissues but not others, enabling the design of more precise treatments for heart failure, chronic inflammation, and cancer that target only the diseased cells. This is fundamental science—it will not produce a drug tomorrow—but understanding how receptors behave in their native environment is the necessary foundation for smarter, safer medicines.

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The process of cell to cell communication is a vital and integral part of all life and controls the inner workings of organisms allowing them to respond, adapt and survive. G protein-coupled receptors (GPCRs) are a large group of related proteins that are located on the surface of cells. These receptors can detect molecules outside of the cell and activate cell signalling pathways inside cells. It has become clear, in recent years, that GPCR pharmacology (the mechanisms by which drugs interact with them) is dependent on the local membrane environment within which the GPCR resides, and there is growing evidence that their function can be regulated by interactions with neighbouring proteins (including other GPCRs) within oligomeric complexes. This may provide novel opportunities to develop drugs which are targeted at GPCRs in a particular cell type or subcellular domain and provide a way to circumvent on-target side effects (i.e. where the drug binds to the right receptor but in the wrong location). Adenosine is an important endogenous nucleoside that is released locally and acts via four different GPCRs (A1AR, A2AAR, A2BAR, A3AR). Adenosine receptors have a widespread distribution and have been implicated in renal, respiratory and cardiovascular diseases, as well as cancer. Local generation of adenosine is markedly enhanced, and adenosine receptor expression changed, under metabolic stress e.g. during hypoxia, inflammation and ischaemia and this protects cells, tissues and organs from collateral damage during infection and inflammation. There is increasing evidence for the presence of several adenosine receptors in homodimer and heteromeric complexes. In our previous programme grant (MR/N020081/1), we showed that heteromeric complexes can be produced for all combinations of adenosine receptor. Others have also reported complexes between A2AAR and A2BAR. A2AAR-D2 dopamine receptor heteromers have been detected in striatum and have been proposed to be a viable target for Parkinson's disease. Finally, there is evidence for A1AR-beta1-adrenoceptor and A1AR-beta2-adrenoceptor heteromers which have altered ligand binding and signaling characteristics. To date, however, the majority of studies have used recombinantly overexpressed receptors in model cell lines to probe for oligomerisation using methods such as bioluminescence resonance energy transfer (BRET). However, such experiments can be confounded by overexpression which can increase the propensity of GPCRs to form dimers. There is therefore an urgent need to develop new approaches to monitor receptor expression levels and to understand the effect of oligomerisation on GPCR function in native cells at endogenous levels of receptor expression and their propensity to form stable and transient complexes. We have recently developed highly sensitive methods to quantify receptor expression levels, their pharmacology and protein-protein interactions that are particularly effective at the low levels of receptor expression found in native cells. These approaches include fluorescent ligand technologies, ligand-directed covalent labelling of endogenous GPCRs, CRISPR/Cas9 genome editing in combination with NanoBiT technologies and single molecule biophysical approaches in single living cells and more complex physiologically relevant ex vivo isolated blood vessels and heart preparations. The aim of this programme is study how receptor expression levels and receptor oligomerisation are regulated in native cells from the cardiovascular and immune systems, which endogenously express adenosine receptors that play key roles in health and disease. We aim to investigate these interactions in human endothelial cells, smooth muscle cells, fibroblasts, macrophages and stem cell-derived cardiomyocytes. We also aim to determine how these interactions are affected by hypoxia and inflammatory mediators.

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Researchers

Barrie Kellam (Co-Investigator)Chris Denning (Co-Investigator)Jeanette Woolard (Co-Investigator)Laura Kilpatrick (Co-Investigator)Samantha Cooper (Co-Investigator)Stephen Briddon (Co-Investigator)Stephen Hill (Principal Investigator)

Related Research

Grants with similar aims, by meaning.

Use of fluorescence correlation spectroscopy to study GPCR oligomerisation and allosterism in membrane micro domains of single living cells.
Mapping adenosine receptor interactomes in human cells utilising NanoBRET protein-protein interaction & CRISPRCas9 mediated proximity proteomics
Impact of macrophage differentiation on adenosine receptor expression and function
Use of fluorescence correlation spectroscopy to study the adenosine A3-receptor in microdomains of single living cells
Towards a Single-Molecule Pharmacology of G-Protein-Coupled Receptors: Understanding Receptor Dynamics to Develop Innovative Drugs

Original classification

Research Grant

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