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Cyclic nucleotide selectivity of protein kinase G isozymes

期刊

PROTEIN SCIENCE
卷 30, 期 2, 页码 316-327

出版社

WILEY
DOI: 10.1002/pro.4008

关键词

cyclic adenosine monophosphate (cAMP); cyclic guanosine monophosphate (cGMP); cyclic nucleotide binding domain (CNB); cyclic nucleotide selectivity; Plasmodium falciparum PKG (PfPKG); protein kinase A (PKA); protein kinase G (PKG)

资金

  1. National Institute of Health (NIH) [GM090161, P30 GM124169-01]

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The interaction between the C-terminal catalytic domain and the N-terminal regulatory domain of cGMP-dependent protein kinases inhibits the intrinsic activity of the enzyme. Selective binding of cGMP to specific domains within the regulatory domain disrupts this inhibitory interaction, leading to activation of the enzyme. Crystal structures of different domains reveal specific contacts and conformational changes that explain the selectivity and activation of the enzyme by cyclic nucleotides.
The intrinsic activity of the C-terminal catalytic (C) domain of cyclic guanosine monophosphate (cGMP)-dependent protein kinases (PKG) is inhibited by interactions with the N-terminal regulatory (R) domain. Selective binding of cGMP to cyclic nucleotide binding (CNB) domains within the R-domain disrupts the inhibitory R-C interaction, leading to the release and activation of the C-domain. Affinity measurements of mammalian and plasmodium PKG CNB domains reveal different degrees of cyclic nucleotide affinity and selectivity; the CNB domains adjacent to the C-domain are more cGMP selective and therefore critical for cGMP-dependent activation. Crystal structures of isolated CNB domains in the presence and absence of cyclic nucleotides reveal isozyme-specific contacts that explain cyclic nucleotide selectivity and conformational changes that accompany CNB. Crystal structures of tandem CNB domains identify two types of CNB-mediated dimeric contacts that indicate cGMP-driven reorganization of domain-domain interfaces that include large conformational changes. Here, we review the available structural and functional information of PKG CNB domains that further advance our understanding of cGMP mediated regulation and activation of PKG isozymes.

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