This project is a continuation of a Project of the current Program Project and is concerned with the role of the dorsal column (DC) in transmitting visceral nociceptive signals to the brain. Hypothesis 1 is that the DC is the main pathway for nociceptive transmission from the genitourinary system, as well as from the gastrointestinal system. The behavioral responses to inflammation of the colon or of the urinary bladder will be compared before and after an upper cervical lesion of the DC, and electrophysiological responses of thalamic neurons will be recorded before and after a lesion of the DC or of the spinothalamic tract (STT). Hypothesis 2 is that visceral inflammation will sensitize primary visceral afferents and also postsynaptic dorsal column (PSDC) and STT neurons. The responses of visceral primary afferents and central neurons will be observed before and after inflammation of the colon, ureter or urinary bladder. Hypothesis 3 is that somewhat different cellular mechanisms underlie central sensitization of visceral responses following visceral inflammation, depending on the cause of the inflammation. There may also be different mechanisms of visceral and somatic responses. The experiments will involve immunostaining of PSDC and STT cells for neuropeptide receptors, behavioral studies or the effects of peptide receptor antagonists, electrophysiological investigations of the action of neurotransmitter receptor agonists and antagonists, and patch-clamp recordings from neurons in spinal cord slices. Hypothesis 4 is that nociceptive signals in the DC activate descending facilitatory pathways that enhance the responses of PSDC and STT neurons and that the facilitatory pathways involve the cerebellum. Studies will be made to confirm the importance of descending facilitation and that cerebellar cortical stimulation can enhance visceral responses.

Agency
National Institute of Health (NIH)
Institute
National Institute of Neurological Disorders and Stroke (NINDS)
Type
Research Program Projects (P01)
Project #
5P01NS011255-28
Application #
6642948
Study Section
National Institute of Neurological Disorders and Stroke Initial Review Group (NSD)
Project Start
2002-08-01
Project End
2003-07-31
Budget Start
Budget End
Support Year
28
Fiscal Year
2002
Total Cost
Indirect Cost
Name
University of Texas Medical Br Galveston
Department
Type
DUNS #
041367053
City
Galveston
State
TX
Country
United States
Zip Code
77555
Carter, Michael W; Johnson, Kathia M; Lee, Jun Yeon et al. (2016) Comparison of Mechanical Allodynia and Recovery of Locomotion and Bladder Function by Different Parameters of Low Thoracic Spinal Contusion Injury in Rats. Korean J Pain 29:86-95
Hammell, D C; Zhang, L P; Ma, F et al. (2016) Transdermal cannabidiol reduces inflammation and pain-related behaviours in a rat model of arthritis. Eur J Pain 20:936-48
Young, E E; Bryant, C D; Lee, S E et al. (2016) Systems genetic and pharmacological analysis identifies candidate genes underlying mechanosensation in the von Frey test. Genes Brain Behav 15:604-15
Yuan, Su-Bo; Ji, Guangchen; Li, Bei et al. (2015) A Wnt5a signaling pathway in the pathogenesis of HIV-1 gp120-induced pain. Pain 156:1311-9
Ji, Guangchen; Li, Zhen; Neugebauer, Volker (2015) Reactive oxygen species mediate visceral pain-related amygdala plasticity and behaviors. Pain 156:825-36
Neugebauer, Volker (2015) Amygdala pain mechanisms. Handb Exp Pharmacol 227:261-84
Hassler, Shayne N; Johnson, Kathia M; Hulsebosch, Claire E (2014) Reactive oxygen species and lipid peroxidation inhibitors reduce mechanical sensitivity in a chronic neuropathic pain model of spinal cord injury in rats. J Neurochem 131:413-7
Ji, Guangchen; Neugebauer, Volker (2014) CB1 augments mGluR5 function in medial prefrontal cortical neurons to inhibit amygdala hyperactivity in an arthritis pain model. Eur J Neurosci 39:455-66
Medina, Georgina; Ji, Guangchen; Grégoire, Stéphanie et al. (2014) Nasal application of neuropeptide S inhibits arthritis pain-related behaviors through an action in the amygdala. Mol Pain 10:32
Kiritoshi, Takaki; Sun, Hao; Ren, Wenjie et al. (2013) Modulation of pyramidal cell output in the medial prefrontal cortex by mGluR5 interacting with CB1. Neuropharmacology 66:170-8

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