G-protein signaling: Back to the future

被引:367
作者
C. R. McCudden [1 ]
M. D. Hains [1 ]
R. J. Kimple [1 ]
D. P. Siderovski [1 ]
F. S. Willard [1 ]
机构
[1] Department of Pharmacology, Lineberger Compreh. Cancer Center, Univ. of N. Carolina at Chapel Hill, Chapel Hill
关键词
Asymmetric cell division; G-protein; GoLoco motif; Phospholipase C; RGS proteins;
D O I
10.1007/s00018-004-4462-3
中图分类号
学科分类号
摘要
Heterotrimeric G-proteins are intracellular partners of G-protein-coupled receptors (GPCRs). GPCRs act on inactive Gα•GDP/Gβγ heterotrimers to promote GDP release and GTP binding, resulting in liberation of Gα from Gβγ. Gα•GTP and Gβγ target effectors including adenylyl cyclases, phospholipases and ion channels. Signaling is terminated by intrinsic GTPase activity of Gα and heterotrimer reformation - a cycle accelerated by 'regulators of G-protein signaling' (RGS proteins). Recent studies have identified several unconventional G-protein signaling pathways that diverge from this standard model. Whereas phospholipase C (PLC) β is activated by Gαq and Gβγ, novel PLC isoforms are regulated by both heterotrimeric and Ras-superfamily G-proteins. An Arabidopsis protein has been discovered containing both GPCR and RGS domains within the same protein. Most surprisingly, a receptor-independent Gα nucleotide cycle that regulates cell division has been delineated in both Caenorhabditis elegans and Drosophila melanogaster. Here, we revisit classical heterotrimeric G-protein signaling and explore these new, non-canonical G-protein signaling pathways. © Birkhäuser Verlag, Basel, 2005.
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页码:551 / 577
页数:26
相关论文
共 168 条
[61]  
Hildebrandt J.D., Sekura R.D., Codina J., Iyengar R., Manclark C.R., Birnbaumer L., Stimulation and inhibition of adenylyl cyclases mediated by distinct regulatory proteins, Nature, 302, pp. 706-709, (1983)
[62]  
Sunahara R.K., Taussig R., Isoforms of mammalian adenylyl cyclase: Multiplicities of signaling, Mol. Interv., 2, pp. 168-184, (2002)
[63]  
Hanoune J., Defer N., Regulation and role of adenylyl cyclase isoforms, Annu. Rev. Pharmacol. Toxicol., 41, pp. 145-174, (2001)
[64]  
Buck L.B., The molecular architecture of odor and pheromone sensing in mammals, Cell, 100, pp. 611-618, (2000)
[65]  
Margolskee R.F., Molecular mechanisms of bitter and sweet taste transduction, J. Biol. Chem., 277, pp. 1-4, (2002)
[66]  
Arshavsky V.Y., Lamb T.D., Pugh Jr. E.N., G proteins and phototransduction, Annu. Rev. Physiol., 64, pp. 153-187, (2002)
[67]  
Rhee S.G., Regulation of phosphoinositide-specific phospholipase C, Annu. Rev. Biochem., 70, pp. 281-312, (2001)
[68]  
Worthylake D.K., Rossman K.L., Sondek J., Crystal structure of Rac1 in complex with the guanine nucleotide exchange region of Tiam1, Nature, 408, pp. 682-688, (2000)
[69]  
Longenecker K.L., Lewis M.E., Chikumi H., Gutkind J.S., Derewenda Z.S., Structure of the RGS-like do-main from PDZ-RhoGEF: Linking heterotrimeric G protein-coupled signaling to Rho GTPases, Structure, 9, pp. 559-569, (2001)
[70]  
Fukuhara S., Murga C., Zohar M., Igishi T., Gutkind J.S., A novel PDZ domain containing guanine nucleotide exchange factor links heterotrimeric G proteins to Rho, J. Biol. Chem., 274, pp. 5868-5879, (1999)