Regulator of G-protein signaling 8 is a protein that in humans is encoded by the RGS8gene.[1][2]
This gene is a member of the regulator of G protein signaling (RGS) family and encodes a protein with a single RGS domain. Regulator of G protein signaling (RGS) proteins are regulatory and structural components of G protein-coupled receptor complexes. They accelerate transit through the cycle of GTP binding and hydrolysis to GDP, thereby terminating signal transduction, but paradoxically, also accelerate receptor-stimulated activation.[2]
References
↑Sood R, Bonner TI, Makalowska I, Stephan DA, Robbins CM, Connors TD, Morgenbesser SD, Su K, Faruque MU, Pinkett H, Graham C, Baxevanis AD, Klinger KW, Landes GM, Trent JM, Carpten JD (Apr 2001). "Cloning and characterization of 13 novel transcripts and the human RGS8 gene from the 1q25 region encompassing the hereditary prostate cancer (HPC1) locus". Genomics. 73 (2): 211–22. doi:10.1006/geno.2001.6500. PMID11318611.
Berman DM, Wilkie TM, Gilman AG (1996). "GAIP and RGS4 are GTPase-activating proteins for the Gi subfamily of G protein alpha subunits". Cell. 86 (3): 445–452. doi:10.1016/S0092-8674(00)80117-8. PMID8756726.
Harrington JJ, Sherf B, Rundlett S, et al. (2001). "Creation of genome-wide protein expression libraries using random activation of gene expression". Nat. Biotechnol. 19 (5): 440–5. doi:10.1038/88107. PMID11329013.
Luo X, Popov S, Bera AK, Wilkie TM, Muallem S (2001). "RGS proteins provide biochemical control of agonist-evoked [Ca2+]i oscillations". Molecular Cell. 7 (3): 651–660. doi:10.1016/S1097-2765(01)00211-8. PMID11463389.
Popov SG, Krishna UM, Falck JR, Wilkie TM (2000). "Ca2+/Calmodulin reverses phosphatidylinositol 3,4, 5-trisphosphate-dependent inhibition of regulators of G protein-signaling GTPase-activating protein activity". J Biol Chem. 275 (25): 18962–8. doi:10.1074/jbc.M001128200. PMID10747990.
Ross EM, Wilkie TM (2000). "GTPase-activating proteins for heterotrimeric G proteins: regulators of G protein signaling (RGS) and RGS-like proteins". Annual Review of Biochemistry. 69: 795–827. doi:10.1146/annurev.biochem.69.1.795. PMID10966476.
Sierra DA, Gilbert DJ, Householder D, Grishin NV, Yu K, Ukidwe P, Barker SA, He W, Wensel TG, Otero G, Brown G, Copeland NG, Jenkins NA, Wilkie TM (2002). "Evolution of the regulators of G-protein signaling multigene family in mouse and human". Genomics. 79 (2): 177–85. doi:10.1006/geno.2002.6693. PMID11829488.
Masuho I, Itoh M, Itoh H, Saitoh O (2004). "The mechanism of membrane-translocation of regulator of G-protein signaling (RGS) 8 induced by Galpha expression". J. Neurochem. 88 (1): 161–8. doi:10.1046/j.1471-4159.2003.02139.x. PMID14675160.
Larminie C, Murdock P, Walhin JP, et al. (2004). "Selective expression of regulators of G-protein signaling (RGS) in the human central nervous system". Brain Res. Mol. Brain Res. 122 (1): 24–34. doi:10.1016/j.molbrainres.2003.11.014. PMID14992813.
Benians A, Nobles M, Tinker A (2005). "Participation of RGS8 in the ternary complex of agonist, receptor and G-protein". Biochem. Soc. Trans. 32 (Pt 6): 1045–7. doi:10.1042/BST0321045. PMID15506959.
Benians A, Nobles M, Hosny S, Tinker A (2005). "Regulators of G-protein signaling form a quaternary complex with the agonist, receptor, and G-protein. A novel explanation for the acceleration of signaling activation kinetics". J. Biol. Chem. 280 (14): 13383–94. doi:10.1074/jbc.M410163200. PMID15677457.
Gregory SG, Barlow KF, McLay KE, et al. (2006). "The DNA sequence and biological annotation of human chromosome 1". Nature. 441 (7091): 315–21. doi:10.1038/nature04727. PMID16710414.
Wilkie TM, Kinch L (2005). "New roles for Galpha and RGS proteins: communication continues despite pulling sisters apart". Current Biology. 15 (20): R843–54. doi:10.1016/j.cub.2005.10.008. PMID16243026.