Patients with insulin dependent diabetes mellitus (IDDM) and all animals models of IDDM exhibit altered autonomic regulation. This abnormality increases the risk of mortality during diabetes. The central mechanisms which underlie these abnormalities are poorly understood. We have recently obtained data which suggest that the paraventricular nucleus (PVN), a central site known to receive afferent information from various visceral afferents and to alter sympathetic outflow, may contribute to altered autonomic outflow during the diabetic state. Furthermore, altered nitric oxide (NO) and gamma-amino butyric acid (GABA) mechanisms within the PVN may be involved in this autonomic outflow. This proposal tests the hypothesis that disrupted NO and GABA mechanisms within the PVN contribute to the altered sympathetic outflow during IDDM. We propose to: first, determine if NO mechanisms are altered in rats with IDDM; second, determine if NO mechanisms within the PVN contributes to the altered sympathetic nerve activity in rats with IDDM; third determine if GABA mechanisms within the PVN contributes to the altered sympathetic nerve activity in rats with IDDM; and fourth, determine if there is altered interaction of NO and GABA mechanisms within the PVN in rats with IDDM. It is anticipated that NO and GABA mechanisms within the PVN contribute to the altered autonomic outflow commonly observed during IDDM. The results should provide significant new information regarding central mechanisms of altered sympatho-excitations specifically involvement of the NO and GABA systems within the PVN, in the altered sympathetic neural activation in the diabetic state. Understanding the role of the central mechanisms, not studied to date, in the altered sympathetic neural drive would enhance our ability to treat the diabetic condition and its cardiovascular complications.

Agency
National Institute of Health (NIH)
Institute
National Institute of Neurological Disorders and Stroke (NINDS)
Type
Research Project (R01)
Project #
1R01NS039751-01
Application #
6074970
Study Section
Special Emphasis Panel (ZNS1-SRB-W (02))
Program Officer
Nichols, Paul L
Project Start
1999-09-30
Project End
2003-08-31
Budget Start
1999-09-30
Budget End
2000-08-31
Support Year
1
Fiscal Year
1999
Total Cost
Indirect Cost
Name
University of Nebraska Medical Center
Department
Physiology
Type
Schools of Medicine
DUNS #
City
Omaha
State
NE
Country
United States
Zip Code
68198
Zheng, Hong; Liu, Xuefei; Patel, Kaushik P (2013) Centrally mediated erectile dysfunction in rats with type 1 diabetes: role of angiotensin II and superoxide. J Sex Med 10:2165-76
Shao, Chun Hong; Capek, Haley L; Patel, Kaushik P et al. (2011) Carbonylation contributes to SERCA2a activity loss and diastolic dysfunction in a rat model of type 1 diabetes. Diabetes 60:947-59
Shao, Chun-Hong; Rozanski, George J; Nagai, Ryoji et al. (2010) Carbonylation of myosin heavy chains in rat heart during diabetes. Biochem Pharmacol 80:205-17
Shao, Chun-Hong; Wehrens, Xander H T; Wyatt, Todd A et al. (2009) Exercise training during diabetes attenuates cardiac ryanodine receptor dysregulation. J Appl Physiol (1985) 106:1280-92
Bidasee, Keshore R; Zheng, Hong; Shao, Chun-Hong et al. (2008) Exercise training initiated after the onset of diabetes preserves myocardial function: effects on expression of beta-adrenoceptors. J Appl Physiol 105:907-14
Zimmer, Jennifer A; Garg, Bhuwan P; Williams, Linda S et al. (2007) Age-related variation in presenting signs of childhood arterial ischemic stroke. Pediatr Neurol 37:171-5
Shao, Chun-Hong; Rozanski, George J; Patel, Kaushik P et al. (2007) Dyssynchronous (non-uniform) Ca2+ release in myocytes from streptozotocin-induced diabetic rats. J Mol Cell Cardiol 42:234-46
Zheng, Hong; Mayhan, William G; Bidasee, Keshore R et al. (2006) Blunted nitric oxide-mediated inhibition of sympathetic nerve activity within the paraventricular nucleus in diabetic rats. Am J Physiol Regul Integr Comp Physiol 290:R992-R1002
Zheng, Hong; Li, Yi-Fan; Weiss, Mark et al. (2002) Neuronal expression of fos protein in the forebrain of diabetic rats. Brain Res 956:268-75
Patel, K P; Li, Y F; Hirooka, Y (2001) Role of nitric oxide in central sympathetic outflow. Exp Biol Med (Maywood) 226:814-24

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