This is a revised proposal for investigation of adenosine receptors in the small intestine. The project is intended to test the general hypothesis that adenosine modulates neuronal activity and transmitter release by interacting with a heterogeneous population of receptors on myenteric neurons that may be coupled to the adenylate cyclase/cAMP system. The project will use electrophysiological and biochemical methods as well as enteric synaptosomes to study the transduction of adenosinergic messages in microdissected myenteric plexus and enzymatically dissociated ganglion preparations. The project is designed to classify the receptor subtypes which modulate the synaptic activity of AH/type 2 and S/type 1 neurons. The coupling of these receptors to adenylate cyclase will be tested in cAMP-dependent modulation studies with the novel protein kinase A agonist/antagonist pair Sp-adenosine-3'-5'-cyclomonophosphothioate (cAMPs)/Rp-cAMPs, pertussis toxin, specific cAMP-dependent phosphodiesterase inhibitors, the cyclase inhibitor MDL 12,330A, pituitary adenylate cyclase-activating polypeptide and cAMP measurements in dissociated myenteric ganglia. The role of the phosphoinositide/protein kinase C system in adenosinergic responses will be studied with protein kinase C stimulators and inhibitors. The action potential duration in AH/type 2 neurons will serve as a model system to study direct effects on calcium influx. The hypothesis that only AH/type 2 neurons possess somal adenosine receptors will be tested in studies that compare the morphology, electrophysiology and responses to adenosine. Endogenous adenosine may exert a tonic inhibitory tone on activity of myenteric neurons and the receptors involved may be linked to adenylate cyclase in AH/type 2 neurons. This hypothesis will be tested with interventions intended to block the actions of endogenous adenosine. Slow synaptic excitation in AH/type 2 neurons is believed to occur through activation of the cAMP second messenger system. The proposed studies will characterize the adenosine receptors that are involved in suppression of 5-HT-mediated slow excitatory postsynaptic potentials (slow EPSPs), elicited in AH/type 2 neurons by focal stimulation of interganglionic connectives. Inhibition of endogenous 5-HT release by purinergic agonists will be studied in isolated ganglia and enteric synaptosomes. Integration of the data from these unique model systems, will clarify the signaling mechanisms for adenosine in myenteric neurons. A model of neuronal hypoxia will also provide insight into the mechanisms by which endogenous adenosine suppresses neurotransmission in pathologic states of the gut such as ischemia and inflammation.

Agency
National Institute of Health (NIH)
Institute
National Institute of Diabetes and Digestive and Kidney Diseases (NIDDK)
Type
First Independent Research Support & Transition (FIRST) Awards (R29)
Project #
5R29DK044179-03
Application #
2143589
Study Section
General Medicine A Subcommittee 2 (GMA)
Project Start
1992-04-01
Project End
1997-03-31
Budget Start
1994-04-01
Budget End
1995-03-31
Support Year
3
Fiscal Year
1994
Total Cost
Indirect Cost
Name
Ohio State University
Department
Physiology
Type
Schools of Medicine
DUNS #
098987217
City
Columbus
State
OH
Country
United States
Zip Code
43210
Liñán-Rico, A; Wunderlich, J E; Enneking, J T et al. (2015) Neuropharmacology of purinergic receptors in human submucous plexus: Involvement of P2X?, P2X?, P2X? channels, P2Y and A? metabotropic receptors in neurotransmission. Neuropharmacology 95:83-99
Liñán-Rico, Andrómeda; Wunderlich, Jacqueline E; Grants, Iveta S et al. (2013) Purinergic autocrine regulation of mechanosensitivity and serotonin release in a human EC model: ATP-gated P2X3 channels in EC are downregulated in ulcerative colitis. Inflamm Bowel Dis 19:2366-79
Liu, C Y; Zhang, H; Christofi, F L (1998) Adenylyl cyclase co-distribution with the CaBPs, calbindin-D28 and calretinin, varies with cell type: assessment with the fluorescent dye, BODIPY forskolin, in enteric ganglia. Cell Tissue Res 293:57-73
Christofi, F L; Guan, Z; Wood, J D et al. (1997) Purinergic Ca2+ signaling in myenteric neurons via P2 purinoceptors. Am J Physiol 272:G463-73
Christofi, F L; Guan, Z; Lucas, J H et al. (1996) Responsiveness to ATP with an increase in intracellular free Ca2+ is not a distinctive feature of calbindin-D28 immunoreactive neurons in myenteric ganglia. Brain Res 725:241-6
Christofi, F L; Wood, J D (1994) Electrophysiological subtypes of inhibitory P1 purinoceptors on myenteric neurones of guinea-pig small bowel. Br J Pharmacol 113:703-10
Christofi, F L; Wood, J D (1993) Effects of PACAP on morphologically identified myenteric neurons in guinea pig small bowel. Am J Physiol 264:G414-21
Christofi, F L; Wood, J D (1993) Presynaptic inhibition by adenosine A1 receptors on guinea pig small intestinal myenteric neurons. Gastroenterology 104:1420-9
Christofi, F L; Hanani, M; Maudlej, N et al. (1993) Enteric glial cells are major contributors to formation of cyclic AMP in myenteric plexus cultures from adult guinea-pig small intestine. Neurosci Lett 159:107-10