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Published in: Endocrine 2/2012

01-04-2012 | Original Article

Involvement of the mesenteric ganglia on androstenedione, noradrenaline and nitrite release using a testis ex vivo system

Authors: J. C. Cavicchia, M. R. Fóscolo, N. Palmada, S. M. Delgado, Z. Y. Sosa

Published in: Endocrine | Issue 2/2012

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Abstract

The autonomic nerve fibres converge to the testis along two major pathways, the superior spermatic nerve (SSN) and the inferior spermatic nerve (ISN). The object of this work was to evaluate whether the addition of noradrenaline (NA) in the ganglionic compartment of two ex vivo systems: superior mesenteric ganglion (SMG)–SSN–testis, inferior mesenteric ganglion (IMG)–ISN–testis modulate androstenedione (A2), NA and nitrite release and to determine whether there are secretory differences between the right and the left testis. Each gonad with its respective ganglion was transferred into a cuvette with two compartments and incubated in a Dubnoff metabolic shaker. The testis incubation liquids were collected and analysed for NA by HPLC, A2 by RIA and nitrites by the Griess method. When NA is added to the IMG, A2 and NA release diminishes and nitrite increases in the left testis, while in the right gonad, A2 and NA increase and nitrite decreases. When NA was administered to the SMG, A2 and NA increase and nitrite diminishes in the left gonad, but they show opposite fluctuations in the right testis. These ex vivo systems appear to be excellent models for studying the sympathetic ganglionic control of the testis though A2, NA and nitrite release from the male gonad. It is evident that a better knowledge about the role of catecholamines and nitric oxide in the testis physiology may facilitate the understanding of some reproductive diseases.
Literature
1.
go back to reference I. Gerendai, Z. Csaba, Z. Vokó, V. Csernu, Involvement of a direct neural mechanism in the control of gonadal functions. J. Steroid Biochem. Mol. Biol. 53(1–6), 299–305 (1995) I. Gerendai, Z. Csaba, Z. Vokó, V. Csernu, Involvement of a direct neural mechanism in the control of gonadal functions. J. Steroid Biochem. Mol. Biol. 53(1–6), 299–305 (1995)
2.
go back to reference S. Lee, R. Miselis, C. Rivier, Anatomical and functional evidence for a neural hypothalamic-testicular pathway that is independent of the pituitary. Endocrinology 143(11), 4447–4454 (2002)PubMedCrossRef S. Lee, R. Miselis, C. Rivier, Anatomical and functional evidence for a neural hypothalamic-testicular pathway that is independent of the pituitary. Endocrinology 143(11), 4447–4454 (2002)PubMedCrossRef
3.
go back to reference S.H. Chow, W. Giglio, R. Anesetti, J.E. Ottenweller, L.M. Pogach, H.F. Huang, The effects of testicular denervation on spermatogenesis in the Sprague-Dawley rat. Neuroendocrinology 72(1), 37–41 (2000)PubMedCrossRef S.H. Chow, W. Giglio, R. Anesetti, J.E. Ottenweller, L.M. Pogach, H.F. Huang, The effects of testicular denervation on spermatogenesis in the Sprague-Dawley rat. Neuroendocrinology 72(1), 37–41 (2000)PubMedCrossRef
4.
go back to reference B.C. Zhu, R.S. Chiocchio, A.M. Suburo, J.H. Tramezzani, Monoaminergic and peptidergic contributions of the superior and the inferior spermatic nerves to the innervation of the testis in the rat. J. Androl. 16, 248–258 (1995)PubMed B.C. Zhu, R.S. Chiocchio, A.M. Suburo, J.H. Tramezzani, Monoaminergic and peptidergic contributions of the superior and the inferior spermatic nerves to the innervation of the testis in the rat. J. Androl. 16, 248–258 (1995)PubMed
5.
go back to reference P. James, C. Rivier, S. Lee, Presence of corticotrophin-releasing factor and/or tyrosine hydroxylase in cells of a neural brain-testicular pathway that are labelled by a transganglionic tracer. J. Neuroendocrinol. 20(2), 173–181 (2008)PubMedCrossRef P. James, C. Rivier, S. Lee, Presence of corticotrophin-releasing factor and/or tyrosine hydroxylase in cells of a neural brain-testicular pathway that are labelled by a transganglionic tracer. J. Neuroendocrinol. 20(2), 173–181 (2008)PubMedCrossRef
6.
go back to reference Z.Y. Sosa, M.N. Palmada, M.R. Fóscolo, F. Capani, A. Conill, J.C. Cavicchia, Administration of noradrenaline in the autonomic ganglia modifies the testosterone release from the testis using an ex vivo system. Int. J. Androl. 32(4), 391–398 (2009)PubMedCrossRef Z.Y. Sosa, M.N. Palmada, M.R. Fóscolo, F. Capani, A. Conill, J.C. Cavicchia, Administration of noradrenaline in the autonomic ganglia modifies the testosterone release from the testis using an ex vivo system. Int. J. Androl. 32(4), 391–398 (2009)PubMedCrossRef
7.
go back to reference A. Mayerhofer, A. Bartke, R.W. Steger, Catecholamine effects on testicular testosterone production in the gonadally active and the gonadally regressed adult golden hamster. Biol. Reprod. 40(4), 752–761 (1989)PubMedCrossRef A. Mayerhofer, A. Bartke, R.W. Steger, Catecholamine effects on testicular testosterone production in the gonadally active and the gonadally regressed adult golden hamster. Biol. Reprod. 40(4), 752–761 (1989)PubMedCrossRef
8.
go back to reference B.C. Zhu, M.N. Palmada, L.I. Aguado, J.C. Cavicchia, Administration of acetylcholine to the spermatic nerve plexus inhibits testosterone secretion in an in vitro isolated rat testis–nerve plexus system. Int. J. Androl. 25(3), 134–138 (2002)PubMedCrossRef B.C. Zhu, M.N. Palmada, L.I. Aguado, J.C. Cavicchia, Administration of acetylcholine to the spermatic nerve plexus inhibits testosterone secretion in an in vitro isolated rat testis–nerve plexus system. Int. J. Androl. 25(3), 134–138 (2002)PubMedCrossRef
9.
go back to reference Z.Y. Sosa, M. Casais, A.M. Rastrilla, L.I. Aguado, Adrenergic influences on coeliac ganglion affect the release of progesterone from cycling ovaries. Characterization of an in vitro system. J.Endocrinol. 166(2), 307–318 (2000)PubMedCrossRef Z.Y. Sosa, M. Casais, A.M. Rastrilla, L.I. Aguado, Adrenergic influences on coeliac ganglion affect the release of progesterone from cycling ovaries. Characterization of an in vitro system. J.Endocrinol. 166(2), 307–318 (2000)PubMedCrossRef
10.
go back to reference M. Casais, Z.Y. Sosa, A.M. Rastrilla, L.I. Aguado, Coeliac ganglion adrenergic activity modifies ovarian progesterone during pregnancy: its inter-relationship with LH. J. Endocrinol. 170(3), 575–584 (2001)PubMedCrossRef M. Casais, Z.Y. Sosa, A.M. Rastrilla, L.I. Aguado, Coeliac ganglion adrenergic activity modifies ovarian progesterone during pregnancy: its inter-relationship with LH. J. Endocrinol. 170(3), 575–584 (2001)PubMedCrossRef
11.
go back to reference Z. Sosa, M. Delgado, M. Casais, L. Aguado, A.M. Rastrilla, Release of ovarian progesterone during the rat oestrous cycle by ganglionic cholinergic influence the role of norepinephrine. J. Steroid Biochem. Mol. Biol. 91(3), 179–184 (2004)PubMedCrossRef Z. Sosa, M. Delgado, M. Casais, L. Aguado, A.M. Rastrilla, Release of ovarian progesterone during the rat oestrous cycle by ganglionic cholinergic influence the role of norepinephrine. J. Steroid Biochem. Mol. Biol. 91(3), 179–184 (2004)PubMedCrossRef
12.
go back to reference S. Mhaouty-Kodja, A. Lozach, R. Habert, M. Tanneux, C. Guigon, S. Brailly-Tabard, J.P. Maltier, C. Legrand-Maltier, Fertility and spermatogenesis are altered in {alpha}1b-adrenergic receptor knockout male mice. J. Endocrinol. 195(2), 281–292 (2007)PubMedCrossRef S. Mhaouty-Kodja, A. Lozach, R. Habert, M. Tanneux, C. Guigon, S. Brailly-Tabard, J.P. Maltier, C. Legrand-Maltier, Fertility and spermatogenesis are altered in {alpha}1b-adrenergic receptor knockout male mice. J. Endocrinol. 195(2), 281–292 (2007)PubMedCrossRef
13.
go back to reference O.O. Anakwe, P.R. Murphy, W.H. Moger, Characterization of beta adrenergic binding sites on rodent Leydig cells. Biol. Reprod. 33, 815–826 (1985)PubMedCrossRef O.O. Anakwe, P.R. Murphy, W.H. Moger, Characterization of beta adrenergic binding sites on rodent Leydig cells. Biol. Reprod. 33, 815–826 (1985)PubMedCrossRef
14.
go back to reference S.A. Andric, M.M. Janjic, N.J. Stojkov, T.S. Kostic, Testosterone-induced modulation of nitric oxide-cGMP signaling pathway and androgenesis in the rat Leydig cells. Biol. Reprod. 83(3), 434–442 (2010)PubMedCrossRef S.A. Andric, M.M. Janjic, N.J. Stojkov, T.S. Kostic, Testosterone-induced modulation of nitric oxide-cGMP signaling pathway and androgenesis in the rat Leydig cells. Biol. Reprod. 83(3), 434–442 (2010)PubMedCrossRef
15.
go back to reference N.P. Lee, C.Y. Cheng, Nitric oxide and cyclic nucleotides: their roles in junction dynamics and spermatogenesis. Adv. Exp. Med. Biol. 636, 172–185 (2008)PubMedCrossRef N.P. Lee, C.Y. Cheng, Nitric oxide and cyclic nucleotides: their roles in junction dynamics and spermatogenesis. Adv. Exp. Med. Biol. 636, 172–185 (2008)PubMedCrossRef
16.
go back to reference D.F. Peterson, A.M. Brown, Functional afferent innervation of testis. J. Neurophysiol. 36(3), 425–433 (1973)PubMed D.F. Peterson, A.M. Brown, Functional afferent innervation of testis. J. Neurophysiol. 36(3), 425–433 (1973)PubMed
17.
go back to reference M. Rauchenwald, W.D. Steers, C. Desjardins, Efferent innervation of the rat testis. Biol. Reprod. 52(5), 1136–1143 (1995)PubMedCrossRef M. Rauchenwald, W.D. Steers, C. Desjardins, Efferent innervation of the rat testis. Biol. Reprod. 52(5), 1136–1143 (1995)PubMedCrossRef
18.
go back to reference M.B. Campos, M.L. Vitale, M.N. Ritta, S.R. Chiocchio, R.S. Calandra, Catecholamine distribution in adult rat testis. Andrologia 22(3), 247–250 (1990)PubMedCrossRef M.B. Campos, M.L. Vitale, M.N. Ritta, S.R. Chiocchio, R.S. Calandra, Catecholamine distribution in adult rat testis. Andrologia 22(3), 247–250 (1990)PubMedCrossRef
19.
go back to reference T.L. Carvalho, N.P. Hodson, M.A. Blank, P.F. Watson, P.K. Mulderry, A.E. Bishop, J. Gu, S.R. Bloom, J.M. Polak, Occurrence, distribution and origin of peptide-containing nerves of guinea-pig and rat male genitalia and the effects of denervation on sperm characteristics. J. Anat. 149, 121–141 (1986)PubMed T.L. Carvalho, N.P. Hodson, M.A. Blank, P.F. Watson, P.K. Mulderry, A.E. Bishop, J. Gu, S.R. Bloom, J.M. Polak, Occurrence, distribution and origin of peptide-containing nerves of guinea-pig and rat male genitalia and the effects of denervation on sperm characteristics. J. Anat. 149, 121–141 (1986)PubMed
20.
go back to reference R. Hubrecht, J. Kirkwood, UFAW handbook on the care and management of laboratory and other research animals, 8th edn. (The Universities Federation for Animal Welfare, Ames, IA, 2010)CrossRef R. Hubrecht, J. Kirkwood, UFAW handbook on the care and management of laboratory and other research animals, 8th edn. (The Universities Federation for Animal Welfare, Ames, IA, 2010)CrossRef
21.
go back to reference L.I. Aguado, S.L. Petrovic, S. Ojeda, Ovarian adrenergic receptors during the onset of puberty: characterization, distribution and coupling to steroidogenic responses. Endocrinology 110(4), 1124–1132 (1982)PubMedCrossRef L.I. Aguado, S.L. Petrovic, S. Ojeda, Ovarian adrenergic receptors during the onset of puberty: characterization, distribution and coupling to steroidogenic responses. Endocrinology 110(4), 1124–1132 (1982)PubMedCrossRef
22.
go back to reference D.S. Koh, B. Hille, Modulation by neurotransmitters of catecholamine secretion from sympathetic ganglion neurons detected by amperometry. Proc. Natl. Acad. Sci. USA 94(4), 1506–1511 (1997)PubMedCrossRef D.S. Koh, B. Hille, Modulation by neurotransmitters of catecholamine secretion from sympathetic ganglion neurons detected by amperometry. Proc. Natl. Acad. Sci. USA 94(4), 1506–1511 (1997)PubMedCrossRef
23.
go back to reference G. Eisenhofer, D.S. Goldstein, R. StuIi, H.R. Kelser, T. Sunderland, D.L. Murphy, I.J. Kopin, Simultaneous liquid-chromatographic determination of 3,4-dihydroxyphenylglycol, catecholamines, and 3,4-dihydroxyphenylalanine in plasma, and their responses to inhibition of monoamine oxidase. Clin. Chem. 32(11), 2030–2033 (1986)PubMed G. Eisenhofer, D.S. Goldstein, R. StuIi, H.R. Kelser, T. Sunderland, D.L. Murphy, I.J. Kopin, Simultaneous liquid-chromatographic determination of 3,4-dihydroxyphenylglycol, catecholamines, and 3,4-dihydroxyphenylalanine in plasma, and their responses to inhibition of monoamine oxidase. Clin. Chem. 32(11), 2030–2033 (1986)PubMed
24.
go back to reference L.M. Olson, C.M. Jones-Burton, A. Jablonka-Shariff, Nitric oxide decreases estradiol synthesis of rats luteinized ovarian cells: regression. Endocrinology 137(8), 3531–3539 (1996)PubMedCrossRef L.M. Olson, C.M. Jones-Burton, A. Jablonka-Shariff, Nitric oxide decreases estradiol synthesis of rats luteinized ovarian cells: regression. Endocrinology 137(8), 3531–3539 (1996)PubMedCrossRef
25.
go back to reference W.G. Snedecor, W.G. Cochram, Statistical methods (The Iowa State University, Ames, LA, 1976) W.G. Snedecor, W.G. Cochram, Statistical methods (The Iowa State University, Ames, LA, 1976)
26.
go back to reference M.B. Frungeri, H.F. Urbanski, B. Höhne-Zell, A. Mayerhofer, Neuronal elements in the testis of the rhesus monkey: ontogeny, characterization and relationship to testicular cell. Neuroendocrinology 71(1), 43–50 (2000)CrossRef M.B. Frungeri, H.F. Urbanski, B. Höhne-Zell, A. Mayerhofer, Neuronal elements in the testis of the rhesus monkey: ontogeny, characterization and relationship to testicular cell. Neuroendocrinology 71(1), 43–50 (2000)CrossRef
27.
go back to reference T.S. Kostic, N.J. Stojkov, M.M. Janjic, S.A. Andric, Structural complexity of the testis and PKG I/StAR interaction regulate the Leydig cell adaptive response to repeated immobilization stress. Int. J. Androl. 33(5), 717–729 (2010)PubMedCrossRef T.S. Kostic, N.J. Stojkov, M.M. Janjic, S.A. Andric, Structural complexity of the testis and PKG I/StAR interaction regulate the Leydig cell adaptive response to repeated immobilization stress. Int. J. Androl. 33(5), 717–729 (2010)PubMedCrossRef
28.
go back to reference Y. Julé, J. Krier, J.H. Szurszewski, Patterns of innervation of neurones in the inferior mesenteric ganglion of the cat. J. Physiol. 344, 293–304 (1983)PubMed Y. Julé, J. Krier, J.H. Szurszewski, Patterns of innervation of neurones in the inferior mesenteric ganglion of the cat. J. Physiol. 344, 293–304 (1983)PubMed
29.
go back to reference J.P. Messenger, J.B. Furness, Distribution of enteric nerve cells that project to the celiac ganglion of the guinea-pig. Cell Tissue Res. 269(1), 119–132 (1992)PubMedCrossRef J.P. Messenger, J.B. Furness, Distribution of enteric nerve cells that project to the celiac ganglion of the guinea-pig. Cell Tissue Res. 269(1), 119–132 (1992)PubMedCrossRef
30.
go back to reference J. Kaleczyc, J.P. Timmermans, M. Majewski, M. Lakomy, D.W. Scheuermann, Distribution and immunohistochemical characteristics of neurons in the porcine caudal mesenteric ganglion projecting to the vas deferens and seminal vehicle. Cell Tissue Res. 282, 59–68 (1995)PubMedCrossRef J. Kaleczyc, J.P. Timmermans, M. Majewski, M. Lakomy, D.W. Scheuermann, Distribution and immunohistochemical characteristics of neurons in the porcine caudal mesenteric ganglion projecting to the vas deferens and seminal vehicle. Cell Tissue Res. 282, 59–68 (1995)PubMedCrossRef
31.
go back to reference M.J. Prud’homme, E. Houdeau, R. Serghini, Y. Tillet, M. Schemann, J.P. Rousseau, Small intensely fluorescent cells of the rat paracervical ganglion synthesize adrenaline, receive afferent innervation from postganglionic cholinergic neurones, and contain muscarinic receptors. Brain Res. 821(1), 141–149 (1999)PubMedCrossRef M.J. Prud’homme, E. Houdeau, R. Serghini, Y. Tillet, M. Schemann, J.P. Rousseau, Small intensely fluorescent cells of the rat paracervical ganglion synthesize adrenaline, receive afferent innervation from postganglionic cholinergic neurones, and contain muscarinic receptors. Brain Res. 821(1), 141–149 (1999)PubMedCrossRef
32.
go back to reference L.G. Elfvin, T. Hökfelt, M. Goldstein, Fluorescence microscopical, immunohistochemical and ultrastructural studies on sympathetic ganglia of the guinea pig, with special reference to the SIF cells and their catecholamine content. J. Ultrastruct. Res. 51, 377–396 (1975)PubMedCrossRef L.G. Elfvin, T. Hökfelt, M. Goldstein, Fluorescence microscopical, immunohistochemical and ultrastructural studies on sympathetic ganglia of the guinea pig, with special reference to the SIF cells and their catecholamine content. J. Ultrastruct. Res. 51, 377–396 (1975)PubMedCrossRef
33.
go back to reference E.J. Parr, K.A. Sharkey, Immunohistochemically-defined subtypes of neurons in the inferior mesenteric ganglion of the guinea-pig. J. Auton. Nerv. Syst. 59(3), 140–150 (1996)PubMedCrossRef E.J. Parr, K.A. Sharkey, Immunohistochemically-defined subtypes of neurons in the inferior mesenteric ganglion of the guinea-pig. J. Auton. Nerv. Syst. 59(3), 140–150 (1996)PubMedCrossRef
34.
go back to reference T. Chiba, S. Masuko, Coexistence of multiple peptides in small intensely fluorescent (SIF) cells of inferior mesenteric ganglion of the guinea pig. Cell Tissue Res. 255(3), 523–527 (1989)PubMedCrossRef T. Chiba, S. Masuko, Coexistence of multiple peptides in small intensely fluorescent (SIF) cells of inferior mesenteric ganglion of the guinea pig. Cell Tissue Res. 255(3), 523–527 (1989)PubMedCrossRef
35.
go back to reference L.G. Elfvin, K. Holmberg, P. Emson, M. Schemann, T. Hökfelt, Nitric oxide synthase, choline acetyltransferase, catecholamine enzymes and neuropeptides and their colocalization in the anterior pelvic ganglion, the inferior mesenteric ganglion and the hypogastric nerve of the male guinea pig. J. Chem. Neuroanat. 14(1), 33–49 (1997)PubMedCrossRef L.G. Elfvin, K. Holmberg, P. Emson, M. Schemann, T. Hökfelt, Nitric oxide synthase, choline acetyltransferase, catecholamine enzymes and neuropeptides and their colocalization in the anterior pelvic ganglion, the inferior mesenteric ganglion and the hypogastric nerve of the male guinea pig. J. Chem. Neuroanat. 14(1), 33–49 (1997)PubMedCrossRef
36.
go back to reference A. Vega Orozco, Z. Sosa, V. Fillipa, F. Mohamed, A.M. Rastrilla, The cholinergic influence on the mesenteric ganglion affects the liberation of ovarian steroids and nitric oxide in oestrus day rats: characterization of an ex vivo system. J. Endocrinol. 191(3), 587–598 (2006)CrossRef A. Vega Orozco, Z. Sosa, V. Fillipa, F. Mohamed, A.M. Rastrilla, The cholinergic influence on the mesenteric ganglion affects the liberation of ovarian steroids and nitric oxide in oestrus day rats: characterization of an ex vivo system. J. Endocrinol. 191(3), 587–598 (2006)CrossRef
37.
go back to reference C. Morán, A. Franco, J.L. Morán, A. Handal, L. Morales, R. Domínguez, Neural activity between ovaries and the prevertebral celiac-superior mesenteric ganglia varies during the estrous cycle of the rat. Endocrine 26(2), 147–152 (2005)PubMedCrossRef C. Morán, A. Franco, J.L. Morán, A. Handal, L. Morales, R. Domínguez, Neural activity between ovaries and the prevertebral celiac-superior mesenteric ganglia varies during the estrous cycle of the rat. Endocrine 26(2), 147–152 (2005)PubMedCrossRef
38.
go back to reference L. Morales, B. Ricardo, A. Bolaños, R. Chavira, R. Domínguez, Ipsilateral vagotomy to unilaterally ovariectomized pre-pubertal rats modifies compensatory ovarian responses. Reprod. Biol. Endocrinol. 5, 24 (2007)PubMedCrossRef L. Morales, B. Ricardo, A. Bolaños, R. Chavira, R. Domínguez, Ipsilateral vagotomy to unilaterally ovariectomized pre-pubertal rats modifies compensatory ovarian responses. Reprod. Biol. Endocrinol. 5, 24 (2007)PubMedCrossRef
39.
go back to reference D.J. Selvage, L. Parsons, C. Rivier, Role played by brainstem neurons in regulating testosterone secretion via a direct neural pathway between the hypothalamus and the testes. Endocrinology 147(6), 3070–3075 (2006)PubMedCrossRef D.J. Selvage, L. Parsons, C. Rivier, Role played by brainstem neurons in regulating testosterone secretion via a direct neural pathway between the hypothalamus and the testes. Endocrinology 147(6), 3070–3075 (2006)PubMedCrossRef
40.
go back to reference M.A. De Bortoli, M.H. Garraza, L.I. Aguado, Adrenergic intracerebroventricular stimulation affects progesterone concentration in the ovarian vein of the rat: participation of the superior ovarian nerve. J. Endocrinol. 159(1), 61–68 (1998)PubMedCrossRef M.A. De Bortoli, M.H. Garraza, L.I. Aguado, Adrenergic intracerebroventricular stimulation affects progesterone concentration in the ovarian vein of the rat: participation of the superior ovarian nerve. J. Endocrinol. 159(1), 61–68 (1998)PubMedCrossRef
41.
go back to reference J.R. Keast, M. Kawatani, W.C. De Groat, Sympathetic modulation of cholinergic transmission in cat vesical ganglia is mediated by alpha 1- and alpha 2-adrenoceptors. Am. J. Physiol. 258(1), 44–50 (1990) J.R. Keast, M. Kawatani, W.C. De Groat, Sympathetic modulation of cholinergic transmission in cat vesical ganglia is mediated by alpha 1- and alpha 2-adrenoceptors. Am. J. Physiol. 258(1), 44–50 (1990)
42.
go back to reference A.C. Shivachar, D.C. Eikenburg, Differential effects of epinephrine and norepinephrine on cAMP response and g(i3)alpha protein expression in cultured sympathetic neurons. J. Pharmacol. Exp. Ther. 291(1), 258–264 (1999)PubMed A.C. Shivachar, D.C. Eikenburg, Differential effects of epinephrine and norepinephrine on cAMP response and g(i3)alpha protein expression in cultured sympathetic neurons. J. Pharmacol. Exp. Ther. 291(1), 258–264 (1999)PubMed
43.
go back to reference S.R. Chiocchio, A.M. Suburo, E. Vladucic, B.C. Zhu, E. Charreau, E.E. Décima, J.H. Tramezzani, Differential effects of superior and inferior spermatic nerves on testosterone secretion and spermatic blood flow in cats. Endocrinology 140(3), 1036–1043 (1999)PubMedCrossRef S.R. Chiocchio, A.M. Suburo, E. Vladucic, B.C. Zhu, E. Charreau, E.E. Décima, J.H. Tramezzani, Differential effects of superior and inferior spermatic nerves on testosterone secretion and spermatic blood flow in cats. Endocrinology 140(3), 1036–1043 (1999)PubMedCrossRef
44.
go back to reference A. Mayerhofer, M.B. Frungieri, S. Fritz, A. Bulling, B. Jessberger, H.J. Vogt, Evidence for catecholaminergic, neuron like cells in the adult human testis: changes associated with testicular pathologies. J. Androl. 20(3), 341–347 (1999)PubMed A. Mayerhofer, M.B. Frungieri, S. Fritz, A. Bulling, B. Jessberger, H.J. Vogt, Evidence for catecholaminergic, neuron like cells in the adult human testis: changes associated with testicular pathologies. J. Androl. 20(3), 341–347 (1999)PubMed
45.
go back to reference A. Mayerhofer, A. Bartke, T. Began, Catecholamines stimulate testicular steroidogenesis in vitro in the Siberian hamster, Phodopus sungorus. Biol. Reprod. 48(4), 883–888 (1993)PubMedCrossRef A. Mayerhofer, A. Bartke, T. Began, Catecholamines stimulate testicular steroidogenesis in vitro in the Siberian hamster, Phodopus sungorus. Biol. Reprod. 48(4), 883–888 (1993)PubMedCrossRef
46.
go back to reference B.A. Cooke, M. Golding, C.J. Dix, M.G. Hunter, Catecholamine stimulation of testosterone production via cyclic AMP in mouse Leydig cells in monolayer culture. Mol. Cell. Endocrinol. 27(2), 221–231 (1982)PubMedCrossRef B.A. Cooke, M. Golding, C.J. Dix, M.G. Hunter, Catecholamine stimulation of testosterone production via cyclic AMP in mouse Leydig cells in monolayer culture. Mol. Cell. Endocrinol. 27(2), 221–231 (1982)PubMedCrossRef
47.
go back to reference S.M. Delgado, M. Casais, Z. Sosa, A.M. Rastrilla, Ganglionic adrenergic action modulates ovarian steroids and nitric oxide in prepubertal rat. Endocr. J. 53(4), 547–554 (2006)PubMedCrossRef S.M. Delgado, M. Casais, Z. Sosa, A.M. Rastrilla, Ganglionic adrenergic action modulates ovarian steroids and nitric oxide in prepubertal rat. Endocr. J. 53(4), 547–554 (2006)PubMedCrossRef
48.
go back to reference S.S. Vallcaneras, M. Casais, A.C. Anzulovich, S.M. Delgado, Z. Sosa, C.M. Telleria, A.M. Rastrilla, Androstenedione acts on the coeliac ganglion and modulates luteal function via the superior ovarian nerve in the postpartum rat. J. Steroid Biochem. Mol. Biol. 125(3–5), 243–250 (2011)PubMedCrossRef S.S. Vallcaneras, M. Casais, A.C. Anzulovich, S.M. Delgado, Z. Sosa, C.M. Telleria, A.M. Rastrilla, Androstenedione acts on the coeliac ganglion and modulates luteal function via the superior ovarian nerve in the postpartum rat. J. Steroid Biochem. Mol. Biol. 125(3–5), 243–250 (2011)PubMedCrossRef
49.
go back to reference R. Chávez, M.E. Cruz, R. Domínguez, Differences in the ovulation rate of the right or left ovary in unilaterally ovariectomized rats: effect of ipsi- and contralateral vagus nerves on the remaining ovary. J. Endocrinol. 113(3), 397–401 (1987)PubMedCrossRef R. Chávez, M.E. Cruz, R. Domínguez, Differences in the ovulation rate of the right or left ovary in unilaterally ovariectomized rats: effect of ipsi- and contralateral vagus nerves on the remaining ovary. J. Endocrinol. 113(3), 397–401 (1987)PubMedCrossRef
Metadata
Title
Involvement of the mesenteric ganglia on androstenedione, noradrenaline and nitrite release using a testis ex vivo system
Authors
J. C. Cavicchia
M. R. Fóscolo
N. Palmada
S. M. Delgado
Z. Y. Sosa
Publication date
01-04-2012
Publisher
Springer US
Published in
Endocrine / Issue 2/2012
Print ISSN: 1355-008X
Electronic ISSN: 1559-0100
DOI
https://doi.org/10.1007/s12020-011-9568-9

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Live: Thursday 27th June 2024, 18:00-19:30 (CEST)

WHO estimates that half of all patients worldwide are non-adherent to their prescribed medication. The consequences of poor adherence can be catastrophic, on both the individual and population level.

Join our expert panel to discover why you need to understand the drivers of non-adherence in your patients, and how you can optimize medication adherence in your clinics to drastically improve patient outcomes.

Prof. Kevin Dolgin
Prof. Florian Limbourg
Prof. Anoop Chauhan
Developed by: Springer Medicine
Obesity Clinical Trial Summary

At a glance: The STEP trials

A round-up of the STEP phase 3 clinical trials evaluating semaglutide for weight loss in people with overweight or obesity.

Developed by: Springer Medicine

Highlights from the ACC 2024 Congress

Year in Review: Pediatric cardiology

Watch Dr. Anne Marie Valente present the last year's highlights in pediatric and congenital heart disease in the official ACC.24 Year in Review session.

Year in Review: Pulmonary vascular disease

The last year's highlights in pulmonary vascular disease are presented by Dr. Jane Leopold in this official video from ACC.24.

Year in Review: Valvular heart disease

Watch Prof. William Zoghbi present the last year's highlights in valvular heart disease from the official ACC.24 Year in Review session.

Year in Review: Heart failure and cardiomyopathies

Watch this official video from ACC.24. Dr. Biykem Bozkurt discusses last year's major advances in heart failure and cardiomyopathies.