The aim of this research is to delineate the role of nerve pathways involving the abdominal prevertebral ganglia in controlling mesenteric blood vessels and to determine the organization of the abdominal nerve-vessel system. Experiments have been designed to determine: (1) characteristics of vascular afferent pathways from mesenteric arteries veins to the sympathetic ganglia; (2) the characteristics of neuromuscular transmissions from sympathetics nerves to mesenteric arteries and veins; (3) the characteristics of intestinal noncholinergic sensory pathways to the prevertebral ganglia: 4) whether there are reflexes between different vascular regions in the mesentery and/or between the mesenteric vasculature and the musculature of the gastrointestinal tract (5) the pharmacologic properties of the reflex pathways within the ganglia and at the nerve-blot vessel junction. These studies will involve anatomical physiological and pharmacologic approaches to these questions. In vitro preparations from guinea pigs, rabbits, rats and cats that consist of the celiac plexus and inferior mesenteric ganglion attached to selected abdominal organs will be used. Preganglionic, postganglionic and afferent nerve fibers will be electrically stimulated. Electrophysiological techniques will be used to determine intracellular responses of neurons in the prevertebral ganglia and vascular smooth muscle cells. Pressure recording techniques will be used to distend and record the contractile responses of mesenteric vascular and gastrointestinal segment. Pharmacologic techniques will be used to determine the mechanisms which modulate neurotransmission in the ganglia and to the blood vessels to determine how these mechanism can be altered with drug therapy. The goal of these studies will be to understand how to autonomic nervous system controls blood vessels and what role reflexes between the viscera plays in this control. This knowledge will help us to understand and design better treatment for diseases which involve the autonomic nervous system; the nerves the selves well as the organs they innervate.

Agency
National Institute of Health (NIH)
Institute
National Heart, Lung, and Blood Institute (NHLBI)
Type
Research Project (R01)
Project #
2R01HL027781-07
Application #
3339310
Study Section
Experimental Cardiovascular Sciences Study Section (ECS)
Project Start
1981-02-01
Project End
1992-01-31
Budget Start
1987-02-01
Budget End
1988-01-31
Support Year
7
Fiscal Year
1987
Total Cost
Indirect Cost
Name
University of Arizona
Department
Type
Schools of Medicine
DUNS #
City
Tucson
State
AZ
Country
United States
Zip Code
85722
Michalkiewicz, M; Michalkiewicz, T; Kreulen, D L et al. (2001) Increased blood pressure responses in neuropeptide Y transgenic rats. Am J Physiol Regul Integr Comp Physiol 281:R417-26
Zheng, Z; Shimamura, K; Anthony, T L et al. (1997) Nitric oxide is a sensory nerve neurotransmitter in the mesenteric artery of guinea pig. J Auton Nerv Syst 67:137-44
Coggan, J S; Purnyn, S L; Knoper, S R et al. (1994) Muscarinic inhibition of two potassium currents in guinea-pig prevertebral neurons: differentiation by extracellular cesium. Neuroscience 59:349-61
Xian, H; Coggan, J S; Knoper, S R et al. (1994) The muscarinic receptor agonist oxotremorine methiodide evokes a nicotinic response in mammalian sympathetic neurons. Eur J Pharmacol 259:21-5
Anthony, T L; Kreulen, D L (1994) A physiologically-evoked M1-muscarinic depolarization in guinea-pig inferior mesenteric ganglion neurons. J Auton Nerv Syst 46:207-15
Knoper, S R; Meehan, A G; Purnyn, S et al. (1993) CCKA receptors mediate slow depolarizations in cultured mammalian sympathetic neurons. Eur J Pharmacol 232:65-9
Matsumoto, S G; Gruener, R P; Kreulen, D L (1993) Neurotransmitter properties of guinea-pig sympathetic neurons grown in dissociated cell culture--I. Adult neurons. Neuroscience 57:1135-45
Matsumoto, S G; Gruener, R P; Kreulen, D L (1993) Neurotransmitter properties of guinea-pig sympathetic neurons grown in dissociated cell culture--II. Fetal and embryonic neurons: regulation of neuropeptide Y expression. Neuroscience 57:1147-57
Knoper, S R; Matsumoto, S G; Kreulen, D L (1992) Response to 5-hydroxytryptamine on neurons of guinea pig celiac and inferior mesenteric ganglia in primary culture. Life Sci 51:703-10
Meehan, A G; Kreulen, D L (1992) A capsaicin-sensitive inhibitory reflex from the colon to mesenteric arteries in the guinea-pig. J Physiol 448:153-9

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