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CO2/HCO3-- and calcium-regulated soluble adenylyl cyclase as a physiological ATP sensor

  • Jonathan H. Zippin
  • , Yanqiu Chen
  • , Susanne G. Straub
  • , Kenneth C. Hess
  • , Ana Diaz
  • , Dana Lee
  • , Patrick Tso
  • , George G. Holz
  • , Geoffrey W.G. Sharp
  • , Lonny R. Levin
  • , Jochen Buck
  • Cornell University
  • University of Cincinnati

Research output: Contribution to journalArticlepeer-review

106 Scopus citations

Abstract

The second messenger molecule cAMP is integral for many physiological processes. In mammalian cells, cAMP can be generated from hormone- andGprotein-regulated transmembrane adenylyl cyclases or via the widely expressed and structurally and biochemically distinct enzyme soluble adenylyl cyclase (sAC). sAC activity is uniquely stimulated by bicarbonate ions, and in cells, sAC functions as a physiological carbon dioxide, bicarbonate, and pH sensor. sAC activity is also stimulated by calcium, and its affinity for its substrate ATP suggests that it may be sensitive to physiologically relevant fluctuations in intracellular ATP. We demonstrate here that sAC can function as a cellular ATP sensor. In cells, sAC-generated cAMP reflects alterations in intracellular ATP that do not affect transmembrane AC-generated cAMP. In β cells of the pancreas, glucose metabolism generates ATP, which corresponds to an increase in cAMP, and we show here that sAC is responsible for an ATP-dependent cAMP increase. Glucose metabolism also elicits insulin secretion, and we further show that sAC is necessary for normal glucose-stimulated insulin secretion in vitro and in vivo.

Original languageEnglish
Pages (from-to)33283-33291
Number of pages9
JournalJournal of Biological Chemistry
Volume288
Issue number46
DOIs
StatePublished - Nov 15 2013

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