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Reichel, M.

Publications and source records attributed to Reichel, M..

2 recordsLinked to original sources

Suitability of GRK antibodies for individual detection and quantification of GRK isoforms in western blots

G protein-coupled receptors (GPCRs) are regulated by GPCR kinases (GRKs) which phosphorylate intracellular domains of the active receptor. This leads to the recruitment of arrestins resulting in desensitization and internalization of the GPCR. Aside from acting on GPCRs, GRKs regulate a variety of membrane, cytosolic, and nuclear proteins not only via phosphorylation but also by acting as scaffold. This multifunctionality is also reflected by their diverse roles in pathological conditions like cancer, influenza infection, malaria, and metabolic disease. Reliable tools to study GRKs are the key to specify their role in complex cellular signaling networks. Thus, we examined the specificity of eight commercially available antibodies targeting the four ubiquitously expressed GRK2, GRK3, GRK5, and GRK6 in western blot analysis. We thereby identified one antibody that did not recognize its antigen, as well as antibodies that showed unspecific signals or cross reactivity. Thus, we strongly recommend testing any antibody with exogenously expressed proteins to clearly confirm identity of the obtained western blot results. Utilizing the most suitable antibodies we established the western blot-based, cost-effective, simple tag-guided analysis of relative protein abundance (STARPA). This method allows comparison of protein levels obtained by immunoblotting with different antibodies. Furthermore, we applied STARPA to determine GRK protein levels in five commonly used cell lines revealing differential isoform expression.

molecular biology↗

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↗