The Influence of an Adrenergic Antagonist Guanethidine (GUA) on the Distribution Pattern and Chemical Coding of Dorsal Root Ganglia (DRG) Neurons Supplying the Porcine Urinary Bladder
暂无分享,去创建一个
[1] Shang-Jen Chang,et al. Capsaicin-Sensitive Sensory Nerves Indirectly Modulate Motor Function of the Urinary Bladder , 2018, International neurourology journal.
[2] W. Markiewicz,et al. Botulinum Toxin Type A Induces Changes in the Chemical Coding of Substance P-Immunoreactive Dorsal Root Ganglia Sensory Neurons Supplying the Porcine Urinary Bladder , 2015, Toxins.
[3] U. Sohn,et al. The Inhibitory Mechanism of Gentamicin on Electrical Field Stimulation Response in Rat Bladder Smooth Muscle , 2015, The Korean journal of physiology & pharmacology : official journal of the Korean Physiological Society and the Korean Society of Pharmacology.
[4] Y. Oh,et al. Calbindin-D28K Prevents Staurosporin-induced Bax Cleavage and Membrane Permeabilization , 2014, Experimental neurobiology.
[5] M. Saito,et al. Inhibitory role of the spinal galanin system in the control of micturition. , 2013, Urology.
[6] R. Chess-Williams,et al. Non-adrenergic, non-cholinergic, non-purinergic contractions of the urothelium/lamina propria of the pig bladder. , 2012, Autonomic & autacoid pharmacology.
[7] M. Majewski,et al. Botulinum toxin type A-induced changes in the chemical coding of dorsal root ganglion neurons supplying the porcine urinary bladder. , 2012, Polish journal of veterinary sciences.
[8] F. Clubb,et al. Swine as Models in Biomedical Research and Toxicology Testing , 2012, Veterinary pathology.
[9] J. Całka,et al. Long-term estradiol-17β administration reduces population of neurons in the sympathetic chain ganglia supplying the ovary in adult gilts. , 2011, Experimental and molecular pathology.
[10] M. P. Martínez,et al. Role of calcitonin gene-related peptide in inhibitory neurotransmission to the pig bladder neck. , 2011, The Journal of urology.
[11] Medardo Hernández,et al. Functional evidence of nitrergic neurotransmission in the human urinary bladder neck , 2010, Neuroscience Letters.
[12] Z. Kmieć,et al. Distribution and neurochemical characterization of sensory dorsal root ganglia neurons supplying porcine urinary bladder. , 2009, Journal of physiology and pharmacology : an official journal of the Polish Physiological Society.
[13] G. Burnstock,et al. Role of ATP and related purines in inhibitory neurotransmission to the pig urinary bladder neck , 2009, British journal of pharmacology.
[14] Y. Oh,et al. Calbindin-D28K prevents drug-induced dopaminergic neuronal death by inhibiting caspase and calpain activity. , 2008, Biochemical and biophysical research communications.
[15] L. Birder,et al. PACAP-Mediated ATP Release from Rat Urothelium and Regulation of PACAP/VIP and Receptor mRNA in Micturition Pathways after Cyclophosphamide (CYP)-Induced Cystitis , 2008, Journal of Molecular Neuroscience.
[16] S. Schiffmann,et al. ‘New’ functions for ‘old’ proteins: The role of the calcium-binding proteins calbindin D-28k, calretinin and parvalbumin, in cerebellar physiology. Studies with knockout mice , 2002, The Cerebellum.
[17] P. Nicoletti,et al. The influence of alpha1-adrenoreceptors on neuropeptide release from primary sensory neurons of the lower urinary tract. , 2007, European urology.
[18] D. Wynick,et al. Activation of the galanin receptor 2 (GalR2) protects the hippocampus from neuronal damage , 2007, Journal of neurochemistry.
[19] S. Benedito,et al. Neuronal and smooth muscle receptors involved in the PACAP‐ and VIP‐induced relaxations of the pig urinary bladder neck , 2006, British journal of pharmacology.
[20] P. Zvára,et al. Role for pituitary adenylate cyclase activating polypeptide in cystitis-induced plasticity of micturition reflexes. , 2006, American journal of physiology. Regulatory, integrative and comparative physiology.
[21] S. Benedito,et al. PACAP 38 is involved in the non‐adrenergic non‐cholinergic inhibitory neurotransmission in the pig urinary bladder neck , 2006, Neurourology and urodynamics.
[22] M. Vizzard,et al. Changes in galanin immunoreactivity in rat micturition reflex pathways after cyclophosphamide-induced cystitis , 2006, Cell and Tissue Research.
[23] K. Katki,et al. Calcitonin gene-related peptide and substance P contribute to reduced blood pressure in sympathectomized rats. , 2005, American journal of physiology. Heart and circulatory physiology.
[24] M. Vizzard,et al. Changes in pituitary adenylate cyclase activating polypeptide expression in urinary bladder pathways after spinal cord injury , 2005, Experimental Neurology.
[25] C. Maggi,et al. Tachykinins and tachykinin receptors: effects in the genitourinary tract. , 2005, Life sciences.
[26] R. Maxwell,et al. [2-(Octahydro-1-azocinyl)-ethyl]-guanidine sulfate (CIBA 5864-SU), a new synthetic antihypertensive agent , 1959, Experientia.
[27] O. Shimada,et al. An immunocytochemical study of calbindin-D28K in laminae I and II of the dorsal horn and spinal ganglia in the chicken with special reference to the relation to substance P-containing primary afferent neurons. , 2005, Archives of histology and cytology.
[28] T. Purves-Tyson,et al. Rapid actions of estradiol on cyclic amp response-element binding protein phosphorylation in dorsal root ganglion neurons , 2004, Neuroscience.
[29] O. Khorram,et al. Physiologic role of nitric oxide and nitric oxide synthase in female lower urinary tract , 2004, Current opinion in obstetrics & gynecology.
[30] M. Vizzard,et al. Changes in galanin immunoreactivity in rat lumbosacral spinal cord and dorsal root ganglia after spinal cord injury , 2004, The Journal of comparative neurology.
[31] G. Castañeda-Hernández,et al. Pro-nociceptive role of peripheral galanin in inflammatory pain , 2004, Pain.
[32] G. Burnstock,et al. Plasticity in expression of calcitonin gene-related peptide and substance P immunoreactivity in ganglia and fibres following guanethidine and/or capsaicin denervation , 1992, Cell and Tissue Research.
[33] J. Polak,et al. Morphological changes of sensory CGRP-immunoreactive and sympathetic nerves in peripheral tissues following chronic denervation , 2004, Histochemistry.
[34] G. Burnstock,et al. Plasticity in developing rat uterine sensory nerves: the role of NGF and TrkA , 2003, Cell and Tissue Research.
[35] N. Danielsen,et al. Effect of anti-nerve growth factor treatment on pituitary adenylate cyclase activating polypeptide expression in adult sensory neurons exposed to adjuvant induced inflammation , 2003, Neuroscience.
[36] S. Hsu,et al. Substance P via NK1 receptor facilitates hyperactive bladder afferent signaling via action of ROS. , 2003, American journal of physiology. Renal physiology.
[37] N. Dun,et al. Modulation of nociceptive transmission by pituitary adenylate cyclase activating polypeptide in the spinal cord of the mouse , 2002, Pain.
[38] T. Hökfelt,et al. The participation of galanin in pain processing at the spinal level. , 2002, Trends in pharmacological sciences.
[39] J. D. Richardson,et al. Cellular Mechanisms of Neurogenic Inflammation , 2002, Journal of Pharmacology and Experimental Therapeutics.
[40] Simon C Watkins,et al. Vanilloid receptor expression suggests a sensory role for urinary bladder epithelial cells , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[41] N. Danielsen,et al. Exogenous NT‐3 and NGF differentially modulate PACAP expression in adult sensory neurons, suggesting distinct roles in injury and inflammation , 2001, The European journal of neuroscience.
[42] M. Vizzard. Alterations in neuropeptide expression in lumbosacral bladder pathways following chronic cystitis , 2001, Journal of Chemical Neuroanatomy.
[43] T. Hökfelt,et al. Effect of intrathecal galanin and its putative antagonist M35 on pain behavior in a neuropathic pain model 1 1 Published on the World Wide Web on 13 September 2000. , 2000, Brain Research.
[44] Z. Szilvássy,et al. Systemic anti-inflammatory effect of somatostatin released from capsaicin-sensitive vagal and sciatic sensory fibres of the rat and guinea-pig. , 2000, European journal of pharmacology.
[45] I. Gozes,et al. Vasoactive Intestinal Peptide and Pituitary Adenylyl Cyclase-Activating Polypeptide Inhibit Tumor Necrosis Factor-α Production in Injured Spinal Cord and in Activated Microglia via a cAMP-Dependent Pathway , 2000, The Journal of Neuroscience.
[46] S. Waxman,et al. Nitric oxide is an autocrine regulator of Na(+) currents in axotomized C-type DRG neurons. , 2000, Journal of neurophysiology.
[47] G. Kéri,et al. Anti-nociceptive effect induced by somatostatin released from sensory nerve terminals and by synthetic somatostatin analogues in the rat , 2000, Neuroscience Letters.
[48] M. Swindle,et al. Surgically induced urologic models in swine. , 2000 .
[49] M. Vizzard. Up-regulation of pituitary adenylate cyclase-activating polypeptide in urinary bladder pathways after chronic cystitis. , 2000, The Journal of comparative neurology.
[50] K. Andersson,et al. Inhibitory innervation of the guinea-pig urethra; roles of CO, NO and VIP. , 1998, Journal of the autonomic nervous system.
[51] J. Levine,et al. Nitric Oxide Signaling in Pain and Nociceptor Sensitization in the Rat , 1998, The Journal of Neuroscience.
[52] A. Ahluwalia,et al. Ovalbumin‐induced neurogenic inflammation in the bladder of sensitized rats , 1998, British journal of pharmacology.
[53] W. C. Groat,et al. Plasticity of Na+ Channels in Afferent Neurones Innervating Rat Urinary Bladder Following Spinal Cord Injury , 1997, The Journal of physiology.
[54] A. Duggan,et al. The effect of a peripheral mononeuropathy on immunoreactive (ir)-galanin release in the spinal cord of the rat , 1997, Brain Research.
[55] C. Maggi. Tachykinins as peripheral modulators of primary afferent nerves and visceral sensitivity. , 1997, Pharmacological research.
[56] S. Mense,et al. Expression of neuropeptides and nitric oxide synthase in neurones innervating the inflamed rat urinary bladder. , 1997, Journal of the autonomic nervous system.
[57] E. Ling,et al. Increased NADPH-diaphorase reactivity in bladder afferent pathways following urethral obstruction in guinea pigs. , 1997, Journal of the peripheral nervous system : JPNS.
[58] J. Quinn,et al. The molecular biology of preprotachykinin-A gene expression , 1996, Neuropeptides.
[59] J. Lundberg. Pharmacology of cotransmission in the autonomic nervous system: integrative aspects on amines, neuropeptides, adenosine triphosphate, amino acids and nitric oxide. , 1996, Pharmacological reviews.
[60] S. Logan,et al. Excitation of rat sympathetic preganglionic neurones by selective activation of the NK1 receptor. , 1996, Journal of the autonomic nervous system.
[61] W. C. Groat,et al. Role of spinal nitric oxide in the facilitation of the micturition reflex by bladder irritation. , 1996, The Journal of urology.
[62] K. Thornbury,et al. Characteristics of the NANC post‐stimulus (‘rebound’) contraction of the urinary bladder neck muscle in sheep , 1995, British journal of pharmacology.
[63] C. N. Honda,et al. Differential distribution of calbindin-D28k and parvalbumin in somatic and visceral sensory neurons , 1995, Neuroscience.
[64] K. Andersson,et al. Facilitatory effect of pituitary adenylate cyclase activating polypeptide on micturition in normal, conscious rats , 1995, Neuroscience.
[65] C. Vaughan,et al. Urine storage mechanisms , 1995, Progress in Neurobiology.
[66] H. Schaible,et al. Afferent volley patterns and the spinal release of immunoreactive substance P in the dorsal horn of the anaesthetized spinal cat , 1995, Neuroscience.
[67] A. Rice. Topical spinal administration of a nitric oxide synthase inhibitor prevents the hyper-reflexia associated with a rat model of persistent visceral pain , 1995, Neuroscience Letters.
[68] C. Maggi,et al. Chapter 9 Spinal cord tachykinins in the micturition reflex , 1995 .
[69] C. Maggi,et al. Spinal cord tachykinins in the micturition reflex. , 1995, Progress in brain research.
[70] G. Burnstock,et al. Plasticity of autonomic nerves: Differential effects of long-term guanethidine sympathectomy on the sensory innervation of the rat uterus during maturation , 1994, International Journal of Developmental Neuroscience.
[71] P. J. Hope,et al. Evidence for localized release of substance P within rat spinal cord evoked by physiological and electrical stimuli , 1994, Neuropeptides.
[72] A. Ahluwalia,et al. Characterization of the capsaicin‐sensitive component of cyclophosphamide‐induced inflammation in the rat urinary bladder , 1994, British journal of pharmacology.
[73] K. Andersson,et al. Nitric oxide synthase in pig lower urinary tract: immunohistochemistry, NADPH diaphorase histochemistry and functional effects , 1993, British journal of pharmacology.
[74] C. Maggi,et al. Effect of bradykinin and tachykinin receptor antagonist on xylene-induced cystitis in rats. , 1993 .
[75] K. Anderson. Pharmacology of lower urinary tract smooth muscles and penile erectile tissues. , 1993, Pharmacological reviews.
[76] C. Maggi,et al. Evidence for a role of tachykinins as sensory transmitters in the activation of micturition reflex , 1993, Neuroscience.
[77] G. Gebhart,et al. Nitric oxide (NO) and nociceptive processing in the spinal cord , 1993, Pain.
[78] T. Hökfelt,et al. Galanin in sensory neurons in the spinal cord. , 1992, Frontiers in neuroendocrinology.
[79] K. Baimbridge,et al. Calcium-binding proteins in the nervous system , 1992, Trends in Neurosciences.
[80] R. Schmidt,et al. Intrathecal administration of substance P in the rat: the effect on bladder and urethral sphincteric activity. , 1992, Urology.
[81] K. Andersson,et al. Nitric oxide and relaxation of pig lower urinary tract , 1992, British journal of pharmacology.
[82] W. D. de Groat,et al. Segmental distribution and peptide content of primary afferent neurons innervating the urogenital organs and colon of male rats , 1992, The Journal of comparative neurology.
[83] I. Takayanagi,et al. Facilitatory effects of tachykinins and guanethidine on the acetylcholine output stimulated by nicotine from guinea‐pig bladder , 1991, Japanese journal of pharmacology.
[84] M. L. Sotgiu,et al. Facilitatory role of calcitonin gene-related peptide (CGRP) on excitation induced by substance P (SP) and noxious stimuli in rat spinal dorsal horn neurons. An iontophoretic study in vivo , 1991, Brain Research.
[85] T. Kato,et al. Contrasting effects of tachykinins and guanethidine on the acetylcholine output stimulated by nicotine from guinea-pig bladder [corrected]. , 1991, British journal of pharmacology.
[86] C. Maggi. The dual function of capsaicin-sensitive sensory nerves in the bladder and urethra. , 2007, Ciba Foundation symposium.
[87] G. Burnstock,et al. Marked increases in calcitonin gene-related peptide-containing nerves in the developing rat following long-term sympathectomy with guanethidine , 1990, Neuroscience.
[88] J. Sandkühler,et al. Spinal somatostatin superfusion in vivo affects activity of cat nociceptive dorsal horn neurons: Comparison with spinal morphine , 1990, Neuroscience.
[89] M. Koltzenburg,et al. Activation of unmyelinated afferent fibres by mechanical stimuli and inflammation of the urinary bladder in the cat. , 1990, The Journal of physiology.
[90] T. Hökfelt,et al. Intrathecal galanin antagonizes the facilitatory effect of substance P on the nociceptive flexor reflex in the rat. , 1989, Acta physiologica Scandinavica.
[91] C. Tanaka,et al. Regulation of the substance P‐induced contraction via the release of acetylcholine and γ‐aminobutyric acid in the guinea‐pig urinary bladder , 1989, British journal of pharmacology.
[92] W. Hutchison,et al. Release of immunoreactive somatostatin in the spinal dorsal horn of the cat , 1988, Neuropeptides.
[93] C. Maggi,et al. Galanin: a potent modulator of excitatory neurotransmission in the human urinary bladder. , 1987, European journal of pharmacology.
[94] H. Takagi,et al. Calcitonin gene-related peptide promotes mechanical nociception by potentiating release of substance P from the spinal dorsal horn in rats , 1987, Brain Research.
[95] W. Yau,et al. Evidence for galanin as an inhibitory neuropeptide on myenteric cholinergic neurons in the guinea pig small intestine , 1986, Neuroscience Letters.
[96] T. Hökfelt,et al. Calcitonin gene-related peptide is a potent inhibitor of substance P degradation. , 1985, European journal of pharmacology.
[97] H. Thoenen,et al. Nerve growth factor supply for sensory neurons: Site of origin and competition with the sympathetic nervous system , 1985, Neuroscience Letters.
[98] J. Saha,et al. The effects of nicotine on spontaneous contractions of cat urinary bladder in situ , 1984, British journal of pharmacology.
[99] S. Landis,et al. Neonatal 6-hydroxydopamine treatment eliminates cholinergic sympathetic innervation and induces sensory sprouting in rat sweat glands , 1984, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[100] Y. Ito,et al. Electrical and mechanical activity recorded from rabbit urinary bladder in response to nerve stimulation. , 1983, The Journal of physiology.
[101] R. A. Maxwell. Guanethidine after twenty years: a pharmacologist's perspective. , 1982, British journal of clinical pharmacology.
[102] M. Dodd,et al. THE RELATION BETWEEN THE ADRENERGIC NEURONE‐BLOCKING AND NORADRENALINE‐DEPLETING ACTIONS OF SOME GUANIDINE DERIVATIVES , 1974, British journal of pharmacology.
[103] J. Oates,et al. DISTRIBUTION OF GUANIDINIUM ANTIHYPERTENSIVES—MECHANISM OF THEIR SELECTIVE ACTION * , 1971, Annals of the New York Academy of Sciences.
[104] D. Boullin. A calcium requirement for release of 3H‐guanethidine by sympathetic nerve stimulation , 1966, The Journal of pharmacy and pharmacology.
[105] B. Brodie,et al. On the mechanism of action of guanethidine and bretylium. , 1965, British journal of pharmacology and chemotherapy.