Targeted knockdown of G protein subunits selectively prevents receptor-mediated modulation of effectors and reveals complex changes in non-targeted signaling proteins
Targeted knockdown of G protein subunits selectively prevents receptor-mediated modulation of effectors and reveals complex changes in non-targeted signaling proteins
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DOI:
10.1074/jbc.m511551200
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发表时间:
2006-04-14
影响因子:
4.8
通讯作者:
Gilman, AG
中科院分区:
文献类型:
--
作者:
Krumins, AM;Gilman, AG
Heterotrimeric G protein signaling specificity has been attributed to select combinations of G alpha, beta, and gamma subunits, their interactions with other signaling proteins, and their localization in the cell. With few exceptions, the G protein subunit combinations that exist in vivo and the significance of these specific combinations are largely unknown. We have begun to approach these problems in HeLa cells by: 1) determining the concentrations of G alpha and G beta subunits; 2) examining receptor-dependent activities of two effector systems (adenylyl cyclase and phospholipase C beta); and 3) systematically silencing each of the G alpha and G beta subunits by using small interfering RNA while quantifying resultant changes in effector function and the concentrations of other relevant proteins in the network. HeLa cells express equimolar amounts of total G alpha and G beta subunits. The most prevalent G alpha proteins were one member of each G alpha subfamily (G alpha(s), G alpha(i3), G alpha(11), and G alpha(13)). We substantially abrogated expression of most of the G alpha and G beta proteins expressed in these cells, singly and some in combinations. As expected, agonist-dependent activation of adenylyl cyclase or phospholipase C beta was specifically eliminated following the silencing of G alpha(s) or G alpha(q/11), respectively. We also confirmed that G beta subunits are necessary for stable accumulation of G alpha proteins in vivo. G beta subunits demonstrated little isoform specificity for receptor-dependent modulation of effector activity. We observed compensatory changes in G protein accumulation following silencing of individual genes, as well as an apparent reciprocal relationship between the expression of certain G alpha(q) and G alpha(i) subfamily members. These findings provide a foundation for understanding the mechanisms that regulate the adaptability and remarkable resilience of G protein signaling networks.