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Matthees, E. S. F.

Publications and source records attributed to Matthees, E. S. F..

2 recordsLinked to original sources

GRKs phosphorylate GPCR C-terminal peptides in a hierarchical manner

Responses from G protein-coupled receptors (GPCRs) are downregulated in a precisely orchestrated process called desensitization. This process consists of two major steps: phosphorylation of the receptor by GPCR kinases (GRKs), predominantly on its C-terminus, and recruitment of arrestin, resulting in different signaling outcomes. We carried out an NMR-based study of the phosphorylation patterns generated by GRK1 and GRK2 on C-terminal peptides of selected receptors (rhodopsin for GRK1, and {beta}1- and {beta}2-adrenergic receptors (ARs) for GRK2). Our data reveal that the kinases are promiscuous with respect to the substrate peptide, but produce clearly defined phosphorylation patterns on each substrate. We found pronounced differences in the rates at which certain residues are phosphorylated, in particular in the PXPP motifs in rhodopsin and {beta}1AR. These results show, that GRKs produce well-defined phosphorylation patterns in absence of further modulators like the full receptor or G{beta}{gamma}, and that the time profile of the phosphorylation barcode seems to be largely encoded in the minimal pair of C-terminal peptide and GRK. The data further suggest that arrestin might encounter different phosphorylation barcodes over time, potentially inducing different responses at different time points in the desensitization process.

biochemistry↗

GRK2/3/5/6 knockout: The impact of individual GRKs on arrestin-binding and GPCR regulation

G protein-coupled receptors (GPCRs) comprise the largest family of transmembrane receptors and represent major drug targets. Upon ligand stimulation, GPCRs activate G proteins and undergo a complex regulation by interaction with GPCR kinases (GRKs) and formation of receptor-arrestin complexes. For many GPCRs, this mechanism triggers receptor desensitisation, internalisation, and possibly a second intracellular signalling wave. Here we created eleven different HEK293 knockout cell clones for GRK2, 3, 5, and 6 individually and in combination. These include four single, two double, four triple, and the quadruple GRK knockout. The statistical evaluation of {beta}-arrestin1/2 interactions for twelve different receptors grouped the tested GPCRs into two main subsets: those for which {beta}-arrestin interaction was mediated by either GRK2, 3, 5, or 6 and those that are mediated by GRK2 or 3 only. Interestingly, the overexpression of specific GRKs was found to induce a robust, ligand-independent {beta}-arrestin interaction with the V2R and AT1R. Finally, using GRK knockout cells, PKC inhibitors, and {beta}-arrestin mutants, we present evidence for differential AT1R-{beta}-arrestin2 complex configurations mediated by selective engagement of PKC, GRK2, or GRK6. We anticipate our novel GRK-knockout platform to facilitate the elucidation of previously unappreciated details of GRK-specific GPCR regulation and {beta}-arrestin complex formation.

cell biology↗