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G Protein-Coupled Receptor Kinases and Beta Arrestins Are Relocalized and Attenuate Cyclic 3′,5′-Adenosine Monophosphate Response to Follicle-Stimulating Hormone in Rat Primary Sertoli Cells1
Author(s) -
Sébastien Marion,
Fabienne Robert,
Pascale Crépieux,
Nadine Martinat,
Carine Troispoux,
Florian Guillou,
Éric Reiter
Publication year - 2002
Publication title -
biology of reproduction
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.366
H-Index - 180
eISSN - 1529-7268
pISSN - 0006-3363
DOI - 10.1095/biolreprod66.1.70
Subject(s) - beta adrenergic receptor kinase , g protein coupled receptor kinase , biology , sertoli cell , microbiology and biotechnology , follicle stimulating hormone receptor , g protein coupled receptor , receptor , arrestin , follicle stimulating hormone , homologous desensitization , medicine , endocrinology , kinase , internalization , agonist , signal transduction , luteinizing hormone , hormone , biochemistry , spermatogenesis
The FSH receptor (FSH-R) is a member of the rhodopsin-like subfamily of G protein-coupled receptors that undergoes homologous desensitization upon agonist stimulation. In immortalized cell lines overexpressing the FSH-R, G protein-coupled receptor kinases (GRKs) and beta-arrestins are involved in the phosphorylation, uncoupling, and internalization of this receptor. In an effort to appreciate the physiological relevance of GRK/beta-arrestin actions in natural FSH-R-bearing cells, we used primary rat Sertoli cells as a model. GRK2, -3, -5, -6a, and -6b and beta-arrestins 1 and 2 were expressed in primary rat Sertoli cells. Overexpression of these different GRKs and beta-arrestins in primary rat Sertoli cells significantly attenuated the FSH-induced cAMP response, and FSH rapidly triggered a relocalization of endogenously expressed GRK2, -3, -5, and -6 and beta-arrestins 1 and 2 from the cytosol to the membranes. These results highlight the relationship existing between the GRK/beta-arrestin regulatory system and the FSH-R signaling machinery in a physiological model.

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