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Heterotrimeric G‐proteins: a short history
Author(s) -
Milligan Graeme,
Kostenis Evi
Publication year - 2006
Publication title -
british journal of pharmacology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.432
H-Index - 211
eISSN - 1476-5381
pISSN - 0007-1188
DOI - 10.1038/sj.bjp.0706405
Subject(s) - heterotrimeric g protein , g protein , g protein coupled receptor , g beta gamma complex , biology , gtpase activating protein , gtpase , g alpha subunit , biochemistry , effector , guanine nucleotide exchange factor , microbiology and biotechnology , protein subunit , gtp binding protein regulators , gene , signal transduction
Some 865 genes in man encode G‐protein‐coupled receptors (GPCRs). The heterotrimeric guanine nucleotide‐binding proteins (G‐proteins) function to transduce signals from this vast panoply of receptors to effector systems including ion channels and enzymes that alter the rate of production, release or degradation of intracellular second messengers. However, it was not until the 1970s that the existence of such transducing proteins was even seriously suggested. Combinations of bacterial toxins that mediate their effects via covalent modification of the α ‐subunit of certain G‐proteins and mutant cell lines that fail to generate cyclic AMP in response to agonists because they either fail to express or express a malfunctional G‐protein allowed their identification and purification. Subsequent to initial cloning efforts, cloning by homology has defined the human G‐proteins to derive from 35 genes, 16 encoding α ‐subunits, five β and 14 γ . All function as guanine nucleotide exchange on–off switches and are mechanistically similar to other proteins that are enzymic GTPases. Although not readily accepted initially, it is now well established that β / γ complexes mediate as least as many functions as the α ‐subunits. The generation of chimeras between different α ‐subunits defined the role of different sections of the primary/secondary sequence and crystal structures and cocrystals with interacting proteins have given detailed understanding of their molecular structure and basis of function. Finally, further modifications of such chimeras have generated a range of G‐protein α ‐subunits with greater promiscuity to interact across GPCR classes and initiated the use of such modified G‐proteins in drug discovery programmes. British Journal of Pharmacology (2006) 147 , S46–S55. doi: 10.1038/sj.bjp.0706405

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