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Crystal structures of human soluble adenylyl cyclase reveal mechanisms of catalysis and of its activation through bicarbonate
Authors:Silke Kleinboelting  Ana Diaz  Sebastien Moniot  Joop van den Heuvel  Michael Weyand  Lonny R Levin  Jochen Buck  Clemens Steegborn
Institution:aDepartment of Biochemistry, University of Bayreuth, 95440 Bayreuth, Germany;;bDepartment of Pharmacology, Weill Cornell Medical College, New York, NY, 10065; and;cHelmholtz-Zentrum für Infektionsforschung, 38124 Braunschweig, Germany
Abstract:cAMP is an evolutionary conserved, prototypic second messenger regulating numerous cellular functions. In mammals, cAMP is synthesized by one of 10 homologous adenylyl cyclases (ACs): nine transmembrane enzymes and one soluble AC (sAC). Among these, only sAC is directly activated by bicarbonate (HCO3); it thereby serves as a cellular sensor for HCO3, carbon dioxide (CO2), and pH in physiological functions, such as sperm activation, aqueous humor formation, and metabolic regulation. Here, we describe crystal structures of human sAC catalytic domains in the apo state and in complex with substrate analog, products, and regulators. The activator HCO3 binds adjacent to Arg176, which acts as a switch that enables formation of the catalytic cation sites. An anionic inhibitor, 4,4′-diisothiocyanatostilbene-2,2′-disulfonic acid, inhibits sAC through binding to the active site entrance, which blocks HCO3 activation through steric hindrance and trapping of the Arg176 side chain. Finally, product complexes reveal small, local rearrangements that facilitate catalysis. Our results provide a molecular mechanism for sAC catalysis and cellular HCO3 sensing and a basis for targeting this system with drugs.The ubiquitous second messenger cAMP regulates diverse physiological processes, from fungal virulence to mammalian brain function (1, 2). In mammals, cAMP can be generated by any of 10 differently expressed and regulated adenylyl cyclases (ACs): nine transmembrane enzymes (tmACs) and one soluble AC (sAC) (3). TmACs reside in the cell membrane, where they mediate cellular responses to hormones acting through G protein-coupled receptors (4). In contrast, sAC functions in various intracellular locations, providing cell-specific spatial and temporal patterns of cAMP (57) in response to intracellular signals, including calcium, ATP, and bicarbonate (HCO3) (3, 810). HCO3 regulation of sAC enzymes is a direct effect on their catalytic domains and is conserved across bacterial, fungal, and animal kingdoms (1, 1113). Via modulation of sAC, and sAC-like cyclase activities, HCO3 serves as an evolutionarily conserved signaling molecule mediating cellular responses to HCO3, CO2, and pH (3, 14). In mammals, sAC acts as a CO2/HCO3/pH sensor in processes such as sperm activation (15), acid-base homeostasis (16), and various metabolic responses (10, 17, 18). sAC has also been implicated in skin and prostate cancer and as a target for male contraceptives (1921).All mammalian ACs are class III nucleotidyl cyclases sharing homologous catalytic domains. Their catalytic cores are formed through symmetrical or pseudosymmetrical association of two identical or highly similar catalytic domains, C1 and C2 (2224); in mammalian ACs, both domains reside on a single polypeptide chain. Such C1C2 pseudoheterodimers form two pseudosymmetrical sites at the dimer interface: the active site and a degenerated, inactive pocket (3, 23). A conserved Lys and an Asp/Thr in the active site recognize the base of the substrate ATP, and two conserved Asp residues bind two divalent cations, normally Mg2+ (23). The ions, called ion A and ion B, coordinate the substrate phosphates and support the intramolecular 3′-hydroxyl (3′-OH) attack at the α-phosphorous to form cAMP and pyrophosphate (PPi) (3). In tmACs, the degenerate site binds forskolin (24), a plant diterpene that activates tmACs but has no effect on sAC (25). The forskolin activation mechanism and the existence of physiological ligands for this site in tmACs or in sAC remain unclear.There are two sAC isoforms known to be generated by alternative splicing (26). Full-length sAC comprises N-terminal catalytic domains along with ∼1,100 residues with a little understood function except for an autoinhibitory motif and a heme-binding domain (3, 27, 28). Exclusion of exon 12 (26) generates a truncated isoform, sACt (residues 1–490), which comprises just the two sAC catalytic domains (sAC-cat) (25). sACt is widely expressed, and it is the isoform most extensively biochemically characterized (3, 8, 11). It is directly activated by Ca2+ and HCO3; Ca2+ supports substrate binding, and HCO3 increases turnover and relieves substrate inhibition (8), and this regulation is conserved in sAC-like enzymes from Cyanobacteria to humans (3, 13, 29). In a homodimeric, HCO3-regulated sAC homolog from Spirulina platensis, adenylyl cyclase C (CyaC), HCO3 appeared to facilitate an active site closure required for catalysis (13), but the HCO3 binding site and its mechanism of activation remained unknown.Here, we present crystal structures of the human sAC-cat in apo form and in complex with substrate, products, bicarbonate, and a pharmacological inhibitor. The structures reveal insights into binding sites and mechanisms for sAC catalysis and for its regulation by physiological and pharmacological small molecules.
Keywords:activation mechanism  bicarbonate signaling  catalytic mechanism  inhibition mechanism
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