Catalytic mechanism of the adenylyl and guanylyl cyclases: Modeling and mutational analysis
- 9 December 1997
- journal article
- research article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 94 (25) , 13414-13419
- https://doi.org/10.1073/pnas.94.25.13414
Abstract
The adenylyl and guanylyl cyclases catalyze the formation of 3′,5′-cyclic adenosine or guanosine monophosphate from the corresponding nucleoside 5′-triphosphate. The guanylyl cyclases, the mammalian adenylyl cyclases, and their microbial homologues function as pairs of homologous catalytic domains. The crystal structure of the rat type II adenylyl cyclase C2 catalytic domain was used to model by homology a mammalian adenylyl cyclase C1-C2 domain pair, a homodimeric adenylyl cyclase of Dictyostelium discoideum, a heterodimeric soluble guanylyl cyclase, and a homodimeric membrane guanylyl cyclase. Mg2+ATP or Mg2+GTP were docked into the active sites based on known stereochemical constraints on their conformation. The models are consistent with the activities of seven active-site mutants. Asp-310 and Glu-432 of type I adenylyl cyclase coordinate a Mg2+ ion. The D310S and D310A mutants have 10-fold reduced Vmax and altered [Mg2+] dependence. The NTP purine moieties bind in mostly hydrophobic pockets. Specificity is conferred by a Lys and an Asp in adenylyl cyclase, and a Glu, an Arg, and a Cys in guanylyl cyclase. The models predict that an Asp from one domain is a general base in the reaction, and that the transition state is stabilized by a conserved Asn-Arg pair on the other domain.Keywords
This publication has 54 references indexed in Scilit:
- The Ras-RasGAP Complex: Structural Basis for GTPase Activation and Its Loss in Oncogenic Ras MutantsScience, 1997
- Inhibition of Adenylyl Cyclase by a Family of Newly Synthesized Adenine Nucleoside 3′-PolyphosphatesPublished by Elsevier ,1996
- New parameters for the refinement of nucleic acid-containing structuresActa Crystallographica Section D-Biological Crystallography, 1996
- CLUSTAL W: improving the sensitivity of progressive multiple sequence alignment through sequence weighting, position-specific gap penalties and weight matrix choiceNucleic Acids Research, 1994
- GTPase mechanism of Gproteins from the 1.7-Å crystal structure of transducin α - GDP AIF−4Nature, 1994
- Crystal structures of the Klenow fragment of DNA polymerase I complexed with deoxynucleoside triphosphate and pyrophosphateBiochemistry, 1993
- From adenylate cyclase to guanylate cyclase: Mutational analysis of a change in substrate specificityJournal of Molecular Biology, 1992
- The primary structure of the larger subunit of soluble guanylyl cyclase from bovine lung Homology between the two subunits of the enzymeFEBS Letters, 1990
- The primary structure of the 70 kDa subunit of bovine soluble guanylate cyclaseFEBS Letters, 1988
- Ribbon models of macromoleculesJournal of Molecular Graphics, 1987