Skip to main content
Erschienen in: Current Hypertension Reports 12/2015

01.12.2015 | Hypertension and the Brain (S Stocker, Section Editor)

Neurohumoral Integration of Cardiovascular Function by the Lamina Terminalis

verfasst von: Nicole M. Cancelliere, Emily A. E. Black, Alastair V. Ferguson

Erschienen in: Current Hypertension Reports | Ausgabe 12/2015

Einloggen, um Zugang zu erhalten

Abstract

The mechanisms involved in cardiovascular regulation, such as vascular tone, fluid volume and blood osmolarity, are quite often mediated by signals circulating in the periphery, such as angiotensin II and sodium concentration. Research has identified areas within the lamina terminalis (LT), specifically the sensory circumventricular organs (CVOs), the subfornical organ and the organum vasculosum of the lamina terminalis, as playing crucial roles detecting and integrating information derived from these circulating signals. The median preoptic nucleus (MnPO) is a third integrative structure within the LT that influences cardiovascular homeostasis, although to date, its role is not as clearly elucidated. More recent studies have demonstrated that the CVOs are not only essential in the detection of traditional cardiovascular signals but also signals primarily considered to be important in the regulation of metabolic, reproductive and inflammatory processes that have now also been implicated in cardiovascular regulation. In this review, we highlight the critical roles played by the LT in the detection and integration of circulating signals that provide critical feedback control information contributing to cardiovascular regulation.
Literatur
1.
Zurück zum Zitat Grundy SM, Cleeman JI, Daniels SR, Donato KA, Eckel RH, Franklin BA, et al. Diagnosis and management of the metabolic syndrome: an American Heart Association/National Heart, Lung, and Blood Institute scientific statement. Curr Opin Cardiol. 2006;21:1–6.PubMedCrossRef Grundy SM, Cleeman JI, Daniels SR, Donato KA, Eckel RH, Franklin BA, et al. Diagnosis and management of the metabolic syndrome: an American Heart Association/National Heart, Lung, and Blood Institute scientific statement. Curr Opin Cardiol. 2006;21:1–6.PubMedCrossRef
2.
Zurück zum Zitat Chobanian AV, Bakris GL, Black HR, Cushman WC, Green LA, Izzo Jr JL, et al. The seventh report of the joint national committee on prevention, detection, evaluation, and treatment of high blood pressure: the JNC 7 report. JAMA. 2003;289:2560–72.PubMedCrossRef Chobanian AV, Bakris GL, Black HR, Cushman WC, Green LA, Izzo Jr JL, et al. The seventh report of the joint national committee on prevention, detection, evaluation, and treatment of high blood pressure: the JNC 7 report. JAMA. 2003;289:2560–72.PubMedCrossRef
3.
4.
Zurück zum Zitat Cottrell GT, Ferguson AV. Sensory circumventricular organs: central roles in integrated autonomic regulation. Regul Pept. 2004;117:11–23.PubMedCrossRef Cottrell GT, Ferguson AV. Sensory circumventricular organs: central roles in integrated autonomic regulation. Regul Pept. 2004;117:11–23.PubMedCrossRef
5.
Zurück zum Zitat de Lima SL, da Silva EF, de Andrade AM, Xavier CH, Freiria-Oliveira AH, Colugnati DB, et al. Involvement of the median preoptic nucleus in blood pressure control. Neurosci Lett. 2014;558:91–6.CrossRef de Lima SL, da Silva EF, de Andrade AM, Xavier CH, Freiria-Oliveira AH, Colugnati DB, et al. Involvement of the median preoptic nucleus in blood pressure control. Neurosci Lett. 2014;558:91–6.CrossRef
6.
Zurück zum Zitat Buggy J, Fisher AE, Hoffman WE, Johnson AL, Phillips MI. Ventricular obstruction: effect on drinking induced by intracranial injection of angiotensin. Science. 1975;190:72–4.PubMedCrossRef Buggy J, Fisher AE, Hoffman WE, Johnson AL, Phillips MI. Ventricular obstruction: effect on drinking induced by intracranial injection of angiotensin. Science. 1975;190:72–4.PubMedCrossRef
7.
Zurück zum Zitat Johnson AK, Epstein AN. The cerebral ventricles as the avenue for the dipsogenic action of intracranial angiotensin. Brain Res. 1975;86:399–418.PubMedCrossRef Johnson AK, Epstein AN. The cerebral ventricles as the avenue for the dipsogenic action of intracranial angiotensin. Brain Res. 1975;86:399–418.PubMedCrossRef
8.
Zurück zum Zitat Buggy J, Johnson AK. Anteroventral third ventricle periventricular ablation: temporary adipsia and persisting thirst deficits. Neurosci Lett. 1977;5:177–82.PubMedCrossRef Buggy J, Johnson AK. Anteroventral third ventricle periventricular ablation: temporary adipsia and persisting thirst deficits. Neurosci Lett. 1977;5:177–82.PubMedCrossRef
9.
Zurück zum Zitat Lind RW, Johnson AK. A further characterization of the effects of AV3V lesions on ingestive behavior. Am J Physiol. 1983;245:R83–90.PubMed Lind RW, Johnson AK. A further characterization of the effects of AV3V lesions on ingestive behavior. Am J Physiol. 1983;245:R83–90.PubMed
10.
Zurück zum Zitat Buggy J, Fisher AE. Anteroventral third ventricle site of action for angiotensin induced thirst. Pharmacol Biochem Behav. 1976;4:651–60.PubMedCrossRef Buggy J, Fisher AE. Anteroventral third ventricle site of action for angiotensin induced thirst. Pharmacol Biochem Behav. 1976;4:651–60.PubMedCrossRef
11.
Zurück zum Zitat Oldfield, McKinley. Circumventricular organs. In: Paxinos, editor. The rat nervous system, Elsevier; 1985. p. 315–334. Oldfield, McKinley. Circumventricular organs. In: Paxinos, editor. The rat nervous system, Elsevier; 1985. p. 315–334.
12.••
Zurück zum Zitat McKinley MJ, McAllen RM, Davern P, Giles ME, Penschow J, Sunn N, Uschakov A, Oldfield BJ. The sensory circumventricular organs of the mammalian brain. Adv Anat Embryol Cell Biol. 2003; 172: III–XII: I–122. This very detailed book describes the unique neuroanatomy, connectivity, vasculature, barrier properties, receptor expression and functions of the circumventricular organs of the brain, providing a great understanding for why these sensory regions of the brain are implicated in the integration of peripheral signals to influence cardiovascular regulation. McKinley MJ, McAllen RM, Davern P, Giles ME, Penschow J, Sunn N, Uschakov A, Oldfield BJ. The sensory circumventricular organs of the mammalian brain. Adv Anat Embryol Cell Biol. 2003; 172: III–XII: I–122. This very detailed book describes the unique neuroanatomy, connectivity, vasculature, barrier properties, receptor expression and functions of the circumventricular organs of the brain, providing a great understanding for why these sensory regions of the brain are implicated in the integration of peripheral signals to influence cardiovascular regulation.
13.
Zurück zum Zitat Polzovic A, Cvejin B, Budimlija Z. Vascular characteristics of the human subfornical organ. Med Pregl. 1994;47:307–9.PubMed Polzovic A, Cvejin B, Budimlija Z. Vascular characteristics of the human subfornical organ. Med Pregl. 1994;47:307–9.PubMed
14.
Zurück zum Zitat Morita S, Furube E, Mannari T, Okuda H, Tatsumi K, Wanaka A, Miyata S. Heterogeneous vascular permeability and alternative diffusion barrier in sensory circumventricular organs of adult mouse brain. Cell Tissue Res. 2015; 1–15. Morita S, Furube E, Mannari T, Okuda H, Tatsumi K, Wanaka A, Miyata S. Heterogeneous vascular permeability and alternative diffusion barrier in sensory circumventricular organs of adult mouse brain. Cell Tissue Res. 2015; 1–15.
15.
Zurück zum Zitat Hernesniemi J, Kawana E, Bruppacher H, Sandri C. Afferent connections of the subfornical organ and of the supraoptic crest. Acta Anat (Basel). 1972;81:321–36.CrossRef Hernesniemi J, Kawana E, Bruppacher H, Sandri C. Afferent connections of the subfornical organ and of the supraoptic crest. Acta Anat (Basel). 1972;81:321–36.CrossRef
16.
Zurück zum Zitat Miselis RR. The subfornical organ’s neural connections and their role in water balance. Peptides. 1982;3:501–2.PubMedCrossRef Miselis RR. The subfornical organ’s neural connections and their role in water balance. Peptides. 1982;3:501–2.PubMedCrossRef
17.
Zurück zum Zitat Miselis RR. The efferent projections of the subfornical organ of the rat: a circumventricular organ within a neural network subserving water balance. Brain Res. 1981;230:1–23.PubMedCrossRef Miselis RR. The efferent projections of the subfornical organ of the rat: a circumventricular organ within a neural network subserving water balance. Brain Res. 1981;230:1–23.PubMedCrossRef
18.
Zurück zum Zitat Lind RW, Van Hoesen GW, Johnson AK. An HRP study of the connections of the subfornical organ of the rat. J Comp Neurol. 1982;210:265–77.PubMedCrossRef Lind RW, Van Hoesen GW, Johnson AK. An HRP study of the connections of the subfornical organ of the rat. J Comp Neurol. 1982;210:265–77.PubMedCrossRef
19.
Zurück zum Zitat Lind RW, Swanson LW, Ganten D. Angiotensin II immunoreactivity in the neural afferents and efferents of the subfornical organ of the rat. Brain Res. 1984;321:209–15.PubMedCrossRef Lind RW, Swanson LW, Ganten D. Angiotensin II immunoreactivity in the neural afferents and efferents of the subfornical organ of the rat. Brain Res. 1984;321:209–15.PubMedCrossRef
20.
Zurück zum Zitat Oldfield BJ, Hards DK, McKinley MJ. Neurons in the median preoptic nucleus of the rat with collateral branches to the subfornical organ and supraoptic nucleus. Brain Res. 1992;586:86–90.PubMedCrossRef Oldfield BJ, Hards DK, McKinley MJ. Neurons in the median preoptic nucleus of the rat with collateral branches to the subfornical organ and supraoptic nucleus. Brain Res. 1992;586:86–90.PubMedCrossRef
21.
Zurück zum Zitat Ferguson AV, Bains JS. Electrophysiology of the circumventricular organs. Front Neuroendocrinol. 1996;17:440–75.PubMedCrossRef Ferguson AV, Bains JS. Electrophysiology of the circumventricular organs. Front Neuroendocrinol. 1996;17:440–75.PubMedCrossRef
22.
Zurück zum Zitat Duvernoy H, Koritke JG, Monnier G. On the vascularisation of the lamina terminalis in the human. Z Zellforsch Mikrosk Anat. 1969;102:49–77.PubMedCrossRef Duvernoy H, Koritke JG, Monnier G. On the vascularisation of the lamina terminalis in the human. Z Zellforsch Mikrosk Anat. 1969;102:49–77.PubMedCrossRef
23.
Zurück zum Zitat Oldfield BJ, Badoer E, Hards DK, McKinley MJ. Fos production in retrogradely labelled neurons of the lamina terminalis following intravenous infusion of either hypertonic saline or angiotensin II. Neuroscience. 1994;60:255–62.PubMedCrossRef Oldfield BJ, Badoer E, Hards DK, McKinley MJ. Fos production in retrogradely labelled neurons of the lamina terminalis following intravenous infusion of either hypertonic saline or angiotensin II. Neuroscience. 1994;60:255–62.PubMedCrossRef
24.
Zurück zum Zitat Bisley JW, Rees SM, McKinley MJ, Hards DK, Oldfield BJ. Identification of osmoresponsive neurons in the forebrain of the rat: a fos study at the ultrastructural level. Brain Res. 1996;720:25–34.PubMedCrossRef Bisley JW, Rees SM, McKinley MJ, Hards DK, Oldfield BJ. Identification of osmoresponsive neurons in the forebrain of the rat: a fos study at the ultrastructural level. Brain Res. 1996;720:25–34.PubMedCrossRef
25.•
Zurück zum Zitat Prager-Khoutorsky M, Bourque CW. Anatomical organization of the rat organum vasculosum laminae terminalis. Am J Physiol Regul Integr Comp Physiol. 2015;309:R324–37. For the first time ever before, this study describes in incredible detail the precise anatomical dimensions and cellular organization of the rat organum vasculosum of the laminae terminalis. PubMedCrossRef Prager-Khoutorsky M, Bourque CW. Anatomical organization of the rat organum vasculosum laminae terminalis. Am J Physiol Regul Integr Comp Physiol. 2015;309:R324–37. For the first time ever before, this study describes in incredible detail the precise anatomical dimensions and cellular organization of the rat organum vasculosum of the laminae terminalis. PubMedCrossRef
26.
Zurück zum Zitat Camacho A, Phillips MI. Horseradish peroxidase study in rat of the neural connections of the organum vasculosum of the lamina terminalis. Neurosci Lett. 1981;25:201–4.PubMedCrossRef Camacho A, Phillips MI. Horseradish peroxidase study in rat of the neural connections of the organum vasculosum of the lamina terminalis. Neurosci Lett. 1981;25:201–4.PubMedCrossRef
27.
Zurück zum Zitat ter Horst GJ, Luiten PG. The projections of the dorsomedial hypothalamic nucleus in the rat. Brain Res Bull. 1986;16:231–48.PubMedCrossRef ter Horst GJ, Luiten PG. The projections of the dorsomedial hypothalamic nucleus in the rat. Brain Res Bull. 1986;16:231–48.PubMedCrossRef
28.
Zurück zum Zitat Armstrong WE, Tian M, Wong H. Electron microscopic analysis of synaptic inputs from the median preoptic nucleus and adjacent regions to the supraoptic nucleus in the rat. J Comp Neurol. 1996;373:228–39.PubMedCrossRef Armstrong WE, Tian M, Wong H. Electron microscopic analysis of synaptic inputs from the median preoptic nucleus and adjacent regions to the supraoptic nucleus in the rat. J Comp Neurol. 1996;373:228–39.PubMedCrossRef
29.
Zurück zum Zitat Trudel E, Bourque CW. A rat brain slice preserving synaptic connections between neurons of the suprachiasmatic nucleus, organum vasculosum lamina terminalis and supraoptic nucleus. J Neurosci Methods. 2003;128:67–77.PubMedCrossRef Trudel E, Bourque CW. A rat brain slice preserving synaptic connections between neurons of the suprachiasmatic nucleus, organum vasculosum lamina terminalis and supraoptic nucleus. J Neurosci Methods. 2003;128:67–77.PubMedCrossRef
30.
Zurück zum Zitat Phillips MI, Camache A. Neural connections of the organum vasculosum of the lamina terminalis. In: Gross P, editor. Circumventricular organs and body fluids. Boca Raton: CRC Press; 1987. p. 157–69. Phillips MI, Camache A. Neural connections of the organum vasculosum of the lamina terminalis. In: Gross P, editor. Circumventricular organs and body fluids. Boca Raton: CRC Press; 1987. p. 157–69.
31.
Zurück zum Zitat Saper CB, Levisohn D. Afferent connections of the median preoptic nucleus in the rat: anatomical evidence for a cardiovascular integrative mechanism in the anteroventral third ventricular (AV3V) region. Brain Res. 1983;288:21–31.PubMedCrossRef Saper CB, Levisohn D. Afferent connections of the median preoptic nucleus in the rat: anatomical evidence for a cardiovascular integrative mechanism in the anteroventral third ventricular (AV3V) region. Brain Res. 1983;288:21–31.PubMedCrossRef
32.
Zurück zum Zitat McKinley MJ, Yao ST, Uschakov A, McAllen RM, Rundgren M, Martelli D. The median preoptic nucleus: front and centre for the regulation of body fluid, sodium, temperature, sleep and cardiovascular homeostasis. Acta Physiol (Oxf). 2015;214:8–32.CrossRef McKinley MJ, Yao ST, Uschakov A, McAllen RM, Rundgren M, Martelli D. The median preoptic nucleus: front and centre for the regulation of body fluid, sodium, temperature, sleep and cardiovascular homeostasis. Acta Physiol (Oxf). 2015;214:8–32.CrossRef
33.
Zurück zum Zitat Johnson AK, Zardetto-Smith AM, Edwards GL. Integrative mechanisms and the maintenance of cardiovascular and body fluid homeostasis: the central processing of sensory input derived from the circumventricular organs of the lamina terminalis. Prog Brain Res. 1992;91:381–93.PubMedCrossRef Johnson AK, Zardetto-Smith AM, Edwards GL. Integrative mechanisms and the maintenance of cardiovascular and body fluid homeostasis: the central processing of sensory input derived from the circumventricular organs of the lamina terminalis. Prog Brain Res. 1992;91:381–93.PubMedCrossRef
34.
Zurück zum Zitat Miselis RR, Shapiro RE, Hand PJ. Subfornical organ efferents to neural systems for control of body water. Science. 1979;205:1022–5.PubMedCrossRef Miselis RR, Shapiro RE, Hand PJ. Subfornical organ efferents to neural systems for control of body water. Science. 1979;205:1022–5.PubMedCrossRef
35.
Zurück zum Zitat Gutman MB, Ciriello J, Mogenson GJ. Effects of plasma angiotensin II and hypernatremia on subfornical organ neurons. Am J Physiol. 1988;254:R746–54.PubMed Gutman MB, Ciriello J, Mogenson GJ. Effects of plasma angiotensin II and hypernatremia on subfornical organ neurons. Am J Physiol. 1988;254:R746–54.PubMed
36.
Zurück zum Zitat Oldfield BJ, Miselis RR, McKinley MJ. Median preoptic nucleus projections to vasopressin-containing neurones of the supraoptic nucleus in sheep. A light and electron microscopic study. Brain Res. 1991;542:193–200.PubMedCrossRef Oldfield BJ, Miselis RR, McKinley MJ. Median preoptic nucleus projections to vasopressin-containing neurones of the supraoptic nucleus in sheep. A light and electron microscopic study. Brain Res. 1991;542:193–200.PubMedCrossRef
37.
Zurück zum Zitat Oldfield BJ, Hards DK, McKinley MJ. Projections from the subfornical organ to the supraoptic nucleus in the rat: ultrastructural identification of an interposed synapse in the median preoptic nucleus using a combination of neuronal tracers. Brain Res. 1991;558:13–9.PubMedCrossRef Oldfield BJ, Hards DK, McKinley MJ. Projections from the subfornical organ to the supraoptic nucleus in the rat: ultrastructural identification of an interposed synapse in the median preoptic nucleus using a combination of neuronal tracers. Brain Res. 1991;558:13–9.PubMedCrossRef
38.
Zurück zum Zitat Thompson RH, Swanson LW. Structural characterization of a hypothalamic visceromotor pattern generator network. Brain Res Brain Res Rev. 2003;41:153–202.PubMedCrossRef Thompson RH, Swanson LW. Structural characterization of a hypothalamic visceromotor pattern generator network. Brain Res Brain Res Rev. 2003;41:153–202.PubMedCrossRef
39.
Zurück zum Zitat Anderson JW, Washburn DL, Ferguson AV. Intrinsic osmosensitivity of subfornical organ neurons. Neuroscience. 2000;100:539–47.PubMedCrossRef Anderson JW, Washburn DL, Ferguson AV. Intrinsic osmosensitivity of subfornical organ neurons. Neuroscience. 2000;100:539–47.PubMedCrossRef
40.
Zurück zum Zitat Ciura S, Bourque CW. Transient receptor potential vanilloid 1 is required for intrinsic osmoreception in organum vasculosum lamina terminalis neurons and for normal thirst responses to systemic hyperosmolality. J Neurosci. 2006;26:9069–75.PubMedCrossRef Ciura S, Bourque CW. Transient receptor potential vanilloid 1 is required for intrinsic osmoreception in organum vasculosum lamina terminalis neurons and for normal thirst responses to systemic hyperosmolality. J Neurosci. 2006;26:9069–75.PubMedCrossRef
41.
42.
Zurück zum Zitat Tribollet E, Li Z, Inenaga K, Yamashita H, Raggenbass M, Dubois-Dauphin M, et al. Functional neuronal binding sites for oxytocin in the ventromedial hypothalamus of the guinea pig after gonadectomy. Brain Res. 1992;588:346–50.PubMedCrossRef Tribollet E, Li Z, Inenaga K, Yamashita H, Raggenbass M, Dubois-Dauphin M, et al. Functional neuronal binding sites for oxytocin in the ventromedial hypothalamus of the guinea pig after gonadectomy. Brain Res. 1992;588:346–50.PubMedCrossRef
43.
Zurück zum Zitat Mendelsohn FA, Quirion R, Saavedra JM, Aguilera G, Catt KJ. Autoradiographic localization of angiotensin II receptors in rat brain. Proc Natl Acad Sci U S A. 1984;81:1575–9.PubMedCentralPubMedCrossRef Mendelsohn FA, Quirion R, Saavedra JM, Aguilera G, Catt KJ. Autoradiographic localization of angiotensin II receptors in rat brain. Proc Natl Acad Sci U S A. 1984;81:1575–9.PubMedCentralPubMedCrossRef
44.
Zurück zum Zitat Song K, Allen AM, Paxinos G, Mendelsohn FA. Mapping of angiotensin II receptor subtype heterogeneity in rat brain. J Comp Neurol. 1992;316:467–84.PubMedCrossRef Song K, Allen AM, Paxinos G, Mendelsohn FA. Mapping of angiotensin II receptor subtype heterogeneity in rat brain. J Comp Neurol. 1992;316:467–84.PubMedCrossRef
45.
Zurück zum Zitat Bourque CW. Central mechanisms of osmosensation and systemic osmoregulation Nat Rev Neurosci 2008;9:519–531. Bourque CW. Central mechanisms of osmosensation and systemic osmoregulation Nat Rev Neurosci 2008;9:519–531.
46.
Zurück zum Zitat Mangiapane ML, Simpson JB. Subfornical organ: forebrain site of pressor and dipsogenic action of angiotensin II. Am J Physiol. 1980;239:R382–9.PubMed Mangiapane ML, Simpson JB. Subfornical organ: forebrain site of pressor and dipsogenic action of angiotensin II. Am J Physiol. 1980;239:R382–9.PubMed
47.
Zurück zum Zitat Mangiapane ML, Simpson JB. Subfornical organ lesions reduce the pressor effect of systemic angiotensin II. Neuroendocrinology. 1980;31:380–4.PubMedCrossRef Mangiapane ML, Simpson JB. Subfornical organ lesions reduce the pressor effect of systemic angiotensin II. Neuroendocrinology. 1980;31:380–4.PubMedCrossRef
48.
Zurück zum Zitat Ferguson AV, Renaud LP. Hypothalamic paraventricular nucleus lesions decrease pressor responses to subfornical organ stimulation. Brain Res. 1984;305:361–4.PubMedCrossRef Ferguson AV, Renaud LP. Hypothalamic paraventricular nucleus lesions decrease pressor responses to subfornical organ stimulation. Brain Res. 1984;305:361–4.PubMedCrossRef
49.
Zurück zum Zitat Ferguson AV, Kasting NW. Electrical stimulation in the subfornical organ increases plasma vasopressin concentrations in the conscious rat. Am J Physiol. 1986;251:R425–8.PubMed Ferguson AV, Kasting NW. Electrical stimulation in the subfornical organ increases plasma vasopressin concentrations in the conscious rat. Am J Physiol. 1986;251:R425–8.PubMed
50.
Zurück zum Zitat Wall KM, Nasr M, Ferguson AV. Actions of endothelin at the subfornical organ. Brain Res. 1992;570:180–7.PubMedCrossRef Wall KM, Nasr M, Ferguson AV. Actions of endothelin at the subfornical organ. Brain Res. 1992;570:180–7.PubMedCrossRef
51.
Zurück zum Zitat Wall KM, Ferguson AV. Endothelin acts at the subfornical organ to influence the activity of putative vasopressin and oxytocin-secreting neurons. Brain Res. 1992;586:111–6.PubMedCrossRef Wall KM, Ferguson AV. Endothelin acts at the subfornical organ to influence the activity of putative vasopressin and oxytocin-secreting neurons. Brain Res. 1992;586:111–6.PubMedCrossRef
52.
Zurück zum Zitat Washburn DLS, Beedle AM, Ferguson AV. Inhibition of subfornical organ neuronal potassium channels by vasopressin. Neuroscience. 1999;93:349–59.PubMedCrossRef Washburn DLS, Beedle AM, Ferguson AV. Inhibition of subfornical organ neuronal potassium channels by vasopressin. Neuroscience. 1999;93:349–59.PubMedCrossRef
53.
Zurück zum Zitat Steardo L, Steardo MD, Testa N, Attanasio A, Persichella M, Cuomo V. Atrial natriuretic factor antagonises angiotensin II—induced vasopressin release in rat subfornical organ. Acta Neurol (Napoli). 1994;16:229–34. Steardo L, Steardo MD, Testa N, Attanasio A, Persichella M, Cuomo V. Atrial natriuretic factor antagonises angiotensin II—induced vasopressin release in rat subfornical organ. Acta Neurol (Napoli). 1994;16:229–34.
54.••
Zurück zum Zitat Gutkind JS, Kurihara M, Castren E, Saavedra JM. Increased concentration of angiotensin II binding sites in selected brain areas of spontaneously hypertensive rats. J Hypertens. 1988;6:79–84. This study shows that areas of the lamina terminalis, as well as their projection sites, in spontaneously hypertensive rats contain a significantly increased number of ANG binding sites, implicating the LT and the pressor actions of ANG in the development of hypertension. PubMedCrossRef Gutkind JS, Kurihara M, Castren E, Saavedra JM. Increased concentration of angiotensin II binding sites in selected brain areas of spontaneously hypertensive rats. J Hypertens. 1988;6:79–84. This study shows that areas of the lamina terminalis, as well as their projection sites, in spontaneously hypertensive rats contain a significantly increased number of ANG binding sites, implicating the LT and the pressor actions of ANG in the development of hypertension. PubMedCrossRef
55.
Zurück zum Zitat Nazarali AJ, Gutkind JS, Correa FMA, Saavedra JM. Decreased angiotensin II receptors in subfornical organ of spontaneously hypertensive rats after chronic antihypertensive treatment with enalapril. Am J Hypertens. 1990;3:59–61.PubMed Nazarali AJ, Gutkind JS, Correa FMA, Saavedra JM. Decreased angiotensin II receptors in subfornical organ of spontaneously hypertensive rats after chronic antihypertensive treatment with enalapril. Am J Hypertens. 1990;3:59–61.PubMed
56.
Zurück zum Zitat Miyakubo H, Hayashi Y, Tanaka J. Enhanced response of subfornical organ neurons projecting to the hypothalamic paraventricular nucleus to angiotensin II in spontaneously hypertensive rats. Auton Neurosci. 2002;95:131–6.PubMedCrossRef Miyakubo H, Hayashi Y, Tanaka J. Enhanced response of subfornical organ neurons projecting to the hypothalamic paraventricular nucleus to angiotensin II in spontaneously hypertensive rats. Auton Neurosci. 2002;95:131–6.PubMedCrossRef
57.
Zurück zum Zitat Hilzendeger AM, Cassell MD, Davis DR, Stauss HM, Mark AL, Grobe JL, Sigmund CD. Angiotensin type 1a receptors in the subfornical organ are required for deoxycorticosterone acetate-salt hypertension Hypertension 2013;61:716–722. Hilzendeger AM, Cassell MD, Davis DR, Stauss HM, Mark AL, Grobe JL, Sigmund CD. Angiotensin type 1a receptors in the subfornical organ are required for deoxycorticosterone acetate-salt hypertension Hypertension 2013;61:716–722.
58.
Zurück zum Zitat Sinnayah P, Lazartigues E, Sakai K, Sharma RV, Sigmund CD, Davisson RL. Genetic ablation of angiotensinogen in the subfornical organ of the brain prevents the central angiotensinergic pressor response Circ Res 2006;99:1125–1131. Sinnayah P, Lazartigues E, Sakai K, Sharma RV, Sigmund CD, Davisson RL. Genetic ablation of angiotensinogen in the subfornical organ of the brain prevents the central angiotensinergic pressor response Circ Res 2006;99:1125–1131.
59.
Zurück zum Zitat Montezano AC, Dulak-Lis M, Tsiropoulou S, Harvey A, Briones AM, Touyz RM. Oxidative stress and human hypertension: vascular mechanisms, biomarkers, and novel therapies. Can J Cardiol. 2015;31:631–41.PubMedCrossRef Montezano AC, Dulak-Lis M, Tsiropoulou S, Harvey A, Briones AM, Touyz RM. Oxidative stress and human hypertension: vascular mechanisms, biomarkers, and novel therapies. Can J Cardiol. 2015;31:631–41.PubMedCrossRef
60.
Zurück zum Zitat Zimmerman MC, Lazartigues E, Sharma RV, Davisson RL. Hypertension caused by angiotensin II infusion involves increased superoxide production in the central nervous system. Circ Res. 2004;95:210–6.PubMedCrossRef Zimmerman MC, Lazartigues E, Sharma RV, Davisson RL. Hypertension caused by angiotensin II infusion involves increased superoxide production in the central nervous system. Circ Res. 2004;95:210–6.PubMedCrossRef
61.
Zurück zum Zitat McCubbin JW, DeMoura RS, Page IH, Olmsted F. Arterial hypertension elicited by subpressor amounts of angiotensin Science 1965;149:1394–1395. McCubbin JW, DeMoura RS, Page IH, Olmsted F. Arterial hypertension elicited by subpressor amounts of angiotensin Science 1965;149:1394–1395.
62.•
Zurück zum Zitat Young CN, Li A, Dong FN, Horwath JA, Clark CG, Davisson RL. Endoplasmic reticulum and oxidant stress mediate nuclear factor-kappaB activation in the subfornical organ during angiotensin II hypertension. Am J Physiol Cell Physiol. 2015;308:C803–12. Important study that shows ROS are a critical component of angiotensin-induced hypertension. PubMedCrossRef Young CN, Li A, Dong FN, Horwath JA, Clark CG, Davisson RL. Endoplasmic reticulum and oxidant stress mediate nuclear factor-kappaB activation in the subfornical organ during angiotensin II hypertension. Am J Physiol Cell Physiol. 2015;308:C803–12. Important study that shows ROS are a critical component of angiotensin-induced hypertension. PubMedCrossRef
63.
Zurück zum Zitat Lob HE, Schultz D, Marvar PJ, Davisson RL, Harrison DG. Role of the NADPH Oxidases in the Subfornical Organ in Angiotensin IIGÇôInduced Hypertension Hypertension 2013;61:382–387. Lob HE, Schultz D, Marvar PJ, Davisson RL, Harrison DG. Role of the NADPH Oxidases in the Subfornical Organ in Angiotensin IIGÇôInduced Hypertension Hypertension 2013;61:382–387.
64.
Zurück zum Zitat Wang G, Sarkar P, Peterson JR, Anrather J, Pierce JP, Moore JM, Feng J, Zhou P, Milner TA, Pickel VM, Iadecola C, Davisson RL. COX-1-derived PGE2 and PGE2 type 1 receptors are vital for angiotensin II-induced formation of reactive oxygen species and Ca(2+) influx in the subfornical organ Am J Physiol Heart Circ Physiol 2013;305:H1451–H1461. Wang G, Sarkar P, Peterson JR, Anrather J, Pierce JP, Moore JM, Feng J, Zhou P, Milner TA, Pickel VM, Iadecola C, Davisson RL. COX-1-derived PGE2 and PGE2 type 1 receptors are vital for angiotensin II-induced formation of reactive oxygen species and Ca(2+) influx in the subfornical organ Am J Physiol Heart Circ Physiol 2013;305:H1451–H1461.
65.
Zurück zum Zitat Xue B, Singh M, Guo F, Hay M, Johnson K. Protective actions of estrogen on angiotensin II-induced hypertension: role of central nitric oxide. Am J Physiol Heart Circ Physiol. 2009;297:H1638–46.PubMedCentralPubMedCrossRef Xue B, Singh M, Guo F, Hay M, Johnson K. Protective actions of estrogen on angiotensin II-induced hypertension: role of central nitric oxide. Am J Physiol Heart Circ Physiol. 2009;297:H1638–46.PubMedCentralPubMedCrossRef
66.
Zurück zum Zitat Cunningham JT, Beltz T, Johnson RF, Johnson AK. The effects of ibotenate lesions of the median preoptic nucleus on experimentally-induced and circadian drinking behavior in rats. Brain Res. 1992;580:325–30.PubMedCrossRef Cunningham JT, Beltz T, Johnson RF, Johnson AK. The effects of ibotenate lesions of the median preoptic nucleus on experimentally-induced and circadian drinking behavior in rats. Brain Res. 1992;580:325–30.PubMedCrossRef
67.
Zurück zum Zitat Oldfield BJ, Bicknell RJ, McAllen RM, Weisinger RS, McKinley MJ. Intravenous hypertonic saline induces Fos immunoreactivity in neurons throughout the lamina terminalis. Brain Res. 1991;561:151–6.PubMedCrossRef Oldfield BJ, Bicknell RJ, McAllen RM, Weisinger RS, McKinley MJ. Intravenous hypertonic saline induces Fos immunoreactivity in neurons throughout the lamina terminalis. Brain Res. 1991;561:151–6.PubMedCrossRef
68.
Zurück zum Zitat McKinley MJ, Badoer E, Oldfield BJ. Intravenous angiotensin II induces Fos-immunoreactivity in circumventricular organs of the lamina terminalis. Brain Res. 1992;594:295–300.PubMedCrossRef McKinley MJ, Badoer E, Oldfield BJ. Intravenous angiotensin II induces Fos-immunoreactivity in circumventricular organs of the lamina terminalis. Brain Res. 1992;594:295–300.PubMedCrossRef
69.•
Zurück zum Zitat Smith PM, Beninger RJ, Ferguson AV. Subfornical organ stimulation elicits drinking. Brain Res Bull. 1995;38:209–13. This study demonstrates that electrical stimulation of the SFO causes rats to increase drinking behaviour, exemplifying regulation of fluid balance as one way to influence blood pressure. PubMedCrossRef Smith PM, Beninger RJ, Ferguson AV. Subfornical organ stimulation elicits drinking. Brain Res Bull. 1995;38:209–13. This study demonstrates that electrical stimulation of the SFO causes rats to increase drinking behaviour, exemplifying regulation of fluid balance as one way to influence blood pressure. PubMedCrossRef
70.••
Zurück zum Zitat Oka Y, Ye M, Zuker CS. Thirst driving and suppressing signals encoded by distinct neural populations in the brain. Nature. 2015;520:349–52. This recent study shows that optogenetic activation of excitatory SFO neurons elicits intense water drinking behaviour in fully water-satiated mice, and for the first time ever that activation of inhibitory neuronal subpopulations in the SFO drastically suppresses drinking, even in thirsty animals. This study demonstrates unique subpopulations within the SFO, which warrant further investigation and characterization. PubMedCentralPubMedCrossRef Oka Y, Ye M, Zuker CS. Thirst driving and suppressing signals encoded by distinct neural populations in the brain. Nature. 2015;520:349–52. This recent study shows that optogenetic activation of excitatory SFO neurons elicits intense water drinking behaviour in fully water-satiated mice, and for the first time ever that activation of inhibitory neuronal subpopulations in the SFO drastically suppresses drinking, even in thirsty animals. This study demonstrates unique subpopulations within the SFO, which warrant further investigation and characterization. PubMedCentralPubMedCrossRef
71.
Zurück zum Zitat Chiaraviglio E, Perez Guaita MF. Anterior third ventricle (A3V) lesions and homeostasis regulation. J Physiol Paris. 1984;79:446–52.PubMed Chiaraviglio E, Perez Guaita MF. Anterior third ventricle (A3V) lesions and homeostasis regulation. J Physiol Paris. 1984;79:446–52.PubMed
72.
Zurück zum Zitat McKinley MJ, Denton DA, Park RG, Weisinger RS. Cerebral involvement in dehydration-induced natriuresis. Brain Res. 1983;263:340–3.PubMedCrossRef McKinley MJ, Denton DA, Park RG, Weisinger RS. Cerebral involvement in dehydration-induced natriuresis. Brain Res. 1983;263:340–3.PubMedCrossRef
73.
Zurück zum Zitat Park RG, Clevers J, McKinley MJ, Rundgren M. Renal denervation does not prevent dehydration-induced natriuresis in sheep. Acta Physiol Scand. 1989;137:199–206.PubMedCrossRef Park RG, Clevers J, McKinley MJ, Rundgren M. Renal denervation does not prevent dehydration-induced natriuresis in sheep. Acta Physiol Scand. 1989;137:199–206.PubMedCrossRef
74.
Zurück zum Zitat Huang W, Lee SL, Arnason SS, Sjoquist M. Dehydration natriuresis in male rats is mediated by oxytocin. Am J Physiol. 1996;270:R427–33.PubMed Huang W, Lee SL, Arnason SS, Sjoquist M. Dehydration natriuresis in male rats is mediated by oxytocin. Am J Physiol. 1996;270:R427–33.PubMed
75.
Zurück zum Zitat Rasmussen MS, Simonsen JA, Sandgaard NC, Hoilund-Carlsen PF, Bie P. Effects of oxytocin in normal man during low and high sodium diets. Acta Physiol Scand. 2004;181:247–57.PubMedCrossRef Rasmussen MS, Simonsen JA, Sandgaard NC, Hoilund-Carlsen PF, Bie P. Effects of oxytocin in normal man during low and high sodium diets. Acta Physiol Scand. 2004;181:247–57.PubMedCrossRef
76.
Zurück zum Zitat Sly DJ, Colvill L, McKinley MJ, Oldfield BJ. Identification of neural projections from the forebrain to the kidney, using the virus pseudorabies. J Auton Nerv Syst. 1999;77:73–82.CrossRef Sly DJ, Colvill L, McKinley MJ, Oldfield BJ. Identification of neural projections from the forebrain to the kidney, using the virus pseudorabies. J Auton Nerv Syst. 1999;77:73–82.CrossRef
77.
Zurück zum Zitat Sly DJ, McKinley MJ, Oldfield BJ. Activation of kidney-directed neurons in the lamina terminalis by alterations in body fluid balance. Am J Physiol Regul Integr Comp Physiol. 2001;281:R1637–46.PubMed Sly DJ, McKinley MJ, Oldfield BJ. Activation of kidney-directed neurons in the lamina terminalis by alterations in body fluid balance. Am J Physiol Regul Integr Comp Physiol. 2001;281:R1637–46.PubMed
78.
Zurück zum Zitat May CN, McAllen RM, McKinley MJ. Renal nerve inhibition by central NaCl and ANG II is abolished by lesions of the lamina terminalis. Am J Physiol Regul Integr Comp Physiol. 2000;279:R1827–33.PubMed May CN, McAllen RM, McKinley MJ. Renal nerve inhibition by central NaCl and ANG II is abolished by lesions of the lamina terminalis. Am J Physiol Regul Integr Comp Physiol. 2000;279:R1827–33.PubMed
79.
Zurück zum Zitat Noda M. The subfornical organ, a specialized sodium channel, and the sensing of sodium levels in the brain. Neuroscientist. 2006;12:80–91.PubMedCrossRef Noda M. The subfornical organ, a specialized sodium channel, and the sensing of sodium levels in the brain. Neuroscientist. 2006;12:80–91.PubMedCrossRef
80.
Zurück zum Zitat Watts AG. Dehydration-associated anorexia: development and rapid reversal. Physiol Behav. 1999;65:871–8.PubMedCrossRef Watts AG. Dehydration-associated anorexia: development and rapid reversal. Physiol Behav. 1999;65:871–8.PubMedCrossRef
82.
Zurück zum Zitat Nakazato M, Murakami N, Date Y, Kojima M, Matsuo H, Kangawa K, et al. A role for ghrelin in the central regulation of feeding. Nature. 2001;409:194–8.PubMedCrossRef Nakazato M, Murakami N, Date Y, Kojima M, Matsuo H, Kangawa K, et al. A role for ghrelin in the central regulation of feeding. Nature. 2001;409:194–8.PubMedCrossRef
83.
Zurück zum Zitat Yoshihara F, Kojima M, Hosoda H, Nakazato M, Kangawa K. Ghrelin: a novel peptide for growth hormone release and feeding regulation. Curr Opin Clin Nutr Metab Care. 2002;5:391–5.PubMedCrossRef Yoshihara F, Kojima M, Hosoda H, Nakazato M, Kangawa K. Ghrelin: a novel peptide for growth hormone release and feeding regulation. Curr Opin Clin Nutr Metab Care. 2002;5:391–5.PubMedCrossRef
84.•
Zurück zum Zitat Haam J, Halmos KC, Di S, Tasker JG. Nutritional state-dependent ghrelin activation of vasopressin neurons via retrograde trans-neuronal-glial stimulation of excitatory GABA circuits. J Neurosci. 2014;34:6201–13. Electrophysiological study on the mechanism by which the metabolic hormone ghrelin induces vasopressin release from the PVN, demonstrating one of many instances of overlap between energy balance and fluid regulation. PubMedCentralPubMedCrossRef Haam J, Halmos KC, Di S, Tasker JG. Nutritional state-dependent ghrelin activation of vasopressin neurons via retrograde trans-neuronal-glial stimulation of excitatory GABA circuits. J Neurosci. 2014;34:6201–13. Electrophysiological study on the mechanism by which the metabolic hormone ghrelin induces vasopressin release from the PVN, demonstrating one of many instances of overlap between energy balance and fluid regulation. PubMedCentralPubMedCrossRef
85.
Zurück zum Zitat Iadecola C, Niwa K, Nogawa S, Zhao X, Nagayama M, Araki E, et al. Reduced susceptibility to ischemic brain injury and N-methyl-D-aspartate-mediated neurotoxicity in cyclooxygenase-2-deficient mice. Proc Natl Acad Sci U S A. 2001;98:1294–9.PubMedCentralPubMedCrossRef Iadecola C, Niwa K, Nogawa S, Zhao X, Nagayama M, Araki E, et al. Reduced susceptibility to ischemic brain injury and N-methyl-D-aspartate-mediated neurotoxicity in cyclooxygenase-2-deficient mice. Proc Natl Acad Sci U S A. 2001;98:1294–9.PubMedCentralPubMedCrossRef
86.
Zurück zum Zitat Soeki T, Kishimoto I, Schwenke DO, Tokudome T, Horio T, Yoshida M, et al. Ghrelin suppresses cardiac sympathetic activity and prevents early left ventricular remodeling in rats with myocardial infarction. Am J Physiol Heart Circ Physiol. 2008;294:H426–32.PubMedCrossRef Soeki T, Kishimoto I, Schwenke DO, Tokudome T, Horio T, Yoshida M, et al. Ghrelin suppresses cardiac sympathetic activity and prevents early left ventricular remodeling in rats with myocardial infarction. Am J Physiol Heart Circ Physiol. 2008;294:H426–32.PubMedCrossRef
87.
Zurück zum Zitat Pulman KJ, Fry WM, Cottrell GT, Ferguson AV. The subfornical organ: a central target for circulating feeding signals. J Neurosci. 2006;26:2022–30.PubMedCrossRef Pulman KJ, Fry WM, Cottrell GT, Ferguson AV. The subfornical organ: a central target for circulating feeding signals. J Neurosci. 2006;26:2022–30.PubMedCrossRef
88.
Zurück zum Zitat Maffei M, Halaas J, Ravussin E, Pratley RE, Lee GH, Zhang Y, et al. Leptin levels in human and rodent: measurement of plasma leptin and ob RNA in obese and weight-reduced subjects. Nat Med. 1995;1:1155–61.PubMedCrossRef Maffei M, Halaas J, Ravussin E, Pratley RE, Lee GH, Zhang Y, et al. Leptin levels in human and rodent: measurement of plasma leptin and ob RNA in obese and weight-reduced subjects. Nat Med. 1995;1:1155–61.PubMedCrossRef
89.
Zurück zum Zitat Smith PM, Chambers AP, Price CJ, Ho W, Hopf C, Sharkey KA, et al. The subfornical organ: a central nervous system site for actions of circulating leptin. Am J Physiol. 2009;296:R512–20. Smith PM, Chambers AP, Price CJ, Ho W, Hopf C, Sharkey KA, et al. The subfornical organ: a central nervous system site for actions of circulating leptin. Am J Physiol. 2009;296:R512–20.
90.•
Zurück zum Zitat Smith PM, Ferguson AV. Cardiovascular actions of leptin in the subfornical organ are abolished by diet-induced obesity. J Neuroendocrinol. 2012;24:504–10. Study on the influence of obesity in regards to leptin effects on blood pressure at the SFO, once again exemplifying the important integrative properties of this structure, and the overlap between energy homeostasis and fluid balance. PubMedCrossRef Smith PM, Ferguson AV. Cardiovascular actions of leptin in the subfornical organ are abolished by diet-induced obesity. J Neuroendocrinol. 2012;24:504–10. Study on the influence of obesity in regards to leptin effects on blood pressure at the SFO, once again exemplifying the important integrative properties of this structure, and the overlap between energy homeostasis and fluid balance. PubMedCrossRef
91.
Zurück zum Zitat Alsmadi O, Melhem M, Hebbar P, Thareja G, John SE, Alkayal F, et al. Leptin in association with common variants of MC3R mediates hypertension. Am J Hypertens. 2014;27:973–81.PubMedCrossRef Alsmadi O, Melhem M, Hebbar P, Thareja G, John SE, Alkayal F, et al. Leptin in association with common variants of MC3R mediates hypertension. Am J Hypertens. 2014;27:973–81.PubMedCrossRef
92.
Zurück zum Zitat Ghantous CM, Azrak Z, Hanache S, Abou-Kheir W, Zeidan A. Differential role of leptin and adiponectin in cardiovascular system. Int J Endocrinol. 2015;2015:534320.PubMedCentralPubMed Ghantous CM, Azrak Z, Hanache S, Abou-Kheir W, Zeidan A. Differential role of leptin and adiponectin in cardiovascular system. Int J Endocrinol. 2015;2015:534320.PubMedCentralPubMed
93.
Zurück zum Zitat Young CN, Morgan DA, Butler SD, Rahmouni K, Gurley SB, Coffman TM, Mark AL, Davisson RL. Angiotensin type 1a receptors in the forebrain subfornical organ facilitate leptin-induced weight loss through brown adipose tissue thermogenesis Molecular Metabolism 2015. Young CN, Morgan DA, Butler SD, Rahmouni K, Gurley SB, Coffman TM, Mark AL, Davisson RL. Angiotensin type 1a receptors in the forebrain subfornical organ facilitate leptin-induced weight loss through brown adipose tissue thermogenesis Molecular Metabolism 2015.
94.
Zurück zum Zitat Jung DH, Kim JY, Kim JK, Koh SB, Park JK, Ahn SV. Relative contribution of obesity and serum adiponectin to the development of hypertension. Diabetes Res Clin Pract. 2014;103:51–6.PubMedCrossRef Jung DH, Kim JY, Kim JK, Koh SB, Park JK, Ahn SV. Relative contribution of obesity and serum adiponectin to the development of hypertension. Diabetes Res Clin Pract. 2014;103:51–6.PubMedCrossRef
95.
Zurück zum Zitat Chen H, Montagnani M, Funahashi T, Shimomura I, Quon MJ. Adiponectin stimulates production of nitric oxide in vascular endothelial cells. J Biol Chem. 2003;278:45021–6.PubMedCrossRef Chen H, Montagnani M, Funahashi T, Shimomura I, Quon MJ. Adiponectin stimulates production of nitric oxide in vascular endothelial cells. J Biol Chem. 2003;278:45021–6.PubMedCrossRef
96.
Zurück zum Zitat Lei J, Vodovotz Y, Tzeng E, Billiar TR. Nitric oxide, a protective molecule in the cardiovascular system. Nitric Oxide. 2013;35:175–85.PubMedCrossRef Lei J, Vodovotz Y, Tzeng E, Billiar TR. Nitric oxide, a protective molecule in the cardiovascular system. Nitric Oxide. 2013;35:175–85.PubMedCrossRef
97.
Zurück zum Zitat Alim I, Fry WM, Walsh MH, Ferguson AV. Actions of adiponectin on the excitability of subfornical organ neurons are altered by food deprivation. Brain Res. 2010;1330:72–82.PubMedCrossRef Alim I, Fry WM, Walsh MH, Ferguson AV. Actions of adiponectin on the excitability of subfornical organ neurons are altered by food deprivation. Brain Res. 2010;1330:72–82.PubMedCrossRef
98.
Zurück zum Zitat Muniyappa R, Yavuz S. Metabolic actions of angiotensin II and insulin: a microvascular endothelial balancing act. Mol Cell Endocrinol. 2013;378:59–69.PubMedCentralPubMedCrossRef Muniyappa R, Yavuz S. Metabolic actions of angiotensin II and insulin: a microvascular endothelial balancing act. Mol Cell Endocrinol. 2013;378:59–69.PubMedCentralPubMedCrossRef
99.
Zurück zum Zitat Mudaliar S, Chang AR, Aroda VR, Chao E, Burke P, Baxi S, et al. Effects of intensive insulin therapy alone and with added pioglitazone on renal salt/water balance and fluid compartment shifts in type 2 diabetes. Diabetes Obes Metab. 2010;12:133–8.PubMedCrossRef Mudaliar S, Chang AR, Aroda VR, Chao E, Burke P, Baxi S, et al. Effects of intensive insulin therapy alone and with added pioglitazone on renal salt/water balance and fluid compartment shifts in type 2 diabetes. Diabetes Obes Metab. 2010;12:133–8.PubMedCrossRef
100.
Zurück zum Zitat Lakhi S, Snow W, Fry M. Insulin modulates the electrical activity of subfornical organ neurons. Neuroreport. 2013;24:329–34.PubMedCrossRef Lakhi S, Snow W, Fry M. Insulin modulates the electrical activity of subfornical organ neurons. Neuroreport. 2013;24:329–34.PubMedCrossRef
101.
Zurück zum Zitat Roa J, Tena-Sempere M. Connecting metabolism and reproduction: roles of central energy sensors and key molecular mediators. Mol Cell Endocrinol. 2014;397:4–14.PubMedCrossRef Roa J, Tena-Sempere M. Connecting metabolism and reproduction: roles of central energy sensors and key molecular mediators. Mol Cell Endocrinol. 2014;397:4–14.PubMedCrossRef
102.
Zurück zum Zitat Limonta P, Maggi R, Giudici D, Martini L, Piva F. Role of the subfornical organ (SFO) in the control of gonadotropin secretion. Brain Res. 1981;229:75–84.PubMedCrossRef Limonta P, Maggi R, Giudici D, Martini L, Piva F. Role of the subfornical organ (SFO) in the control of gonadotropin secretion. Brain Res. 1981;229:75–84.PubMedCrossRef
104.
Zurück zum Zitat Shughrue PJ, Lane MV, Merchenthaler I. Comparative distribution of estrogen receptor-alpha and -beta mRNA in the rat central nervous system. J Comp Neurol. 1997;388:507–25.PubMedCrossRef Shughrue PJ, Lane MV, Merchenthaler I. Comparative distribution of estrogen receptor-alpha and -beta mRNA in the rat central nervous system. J Comp Neurol. 1997;388:507–25.PubMedCrossRef
105.
Zurück zum Zitat Jonklaas J, Buggy J. Angiotensin-estrogen interaction in female brain reduces drinking and pressor responses. Am J Physiol. 1984;247:R167–72.PubMed Jonklaas J, Buggy J. Angiotensin-estrogen interaction in female brain reduces drinking and pressor responses. Am J Physiol. 1984;247:R167–72.PubMed
106.
Zurück zum Zitat Fujisawa S, Tanaka J, Nomura M. Estrogen attenuates the drinking response induced by activation of angiotensinergic pathways from the lateral hypothalamic area to the subfornical organ in female rats. Behav Brain Res. 2001;122:33–41.PubMedCrossRef Fujisawa S, Tanaka J, Nomura M. Estrogen attenuates the drinking response induced by activation of angiotensinergic pathways from the lateral hypothalamic area to the subfornical organ in female rats. Behav Brain Res. 2001;122:33–41.PubMedCrossRef
107.
Zurück zum Zitat Winn RJ, Baker MD, Merle CA, Sherwood OD. Individual and combined effects of relaxin, estrogen, and progesterone in ovariectomized gilts. II. Effects on mammary development. Endocrinology. 1994;135:1250–5.PubMed Winn RJ, Baker MD, Merle CA, Sherwood OD. Individual and combined effects of relaxin, estrogen, and progesterone in ovariectomized gilts. II. Effects on mammary development. Endocrinology. 1994;135:1250–5.PubMed
108.•
Zurück zum Zitat Sunn N, Egli M, Burazin TC, Burns P, Colvill L, Davern P, et al. Circulating relaxin acts on subfornical organ neurons to stimulate water drinking in the rat. Proc Natl Acad Sci U S A. 2002;99:1701–6. Study on the actions of peripheral relaxin on SFO neurons causing drinking behaviour, providing further evidence of the integrative role of this structure in processes such as reproduction and fluid balance. PubMedCentralPubMedCrossRef Sunn N, Egli M, Burazin TC, Burns P, Colvill L, Davern P, et al. Circulating relaxin acts on subfornical organ neurons to stimulate water drinking in the rat. Proc Natl Acad Sci U S A. 2002;99:1701–6. Study on the actions of peripheral relaxin on SFO neurons causing drinking behaviour, providing further evidence of the integrative role of this structure in processes such as reproduction and fluid balance. PubMedCentralPubMedCrossRef
109.
Zurück zum Zitat Mumford AD, Parry LJ, Summerlee AJ. Lesion of the subfornical organ affects the haemotensive response to centrally administered relaxin in anaesthetized rats. J Endocrinol. 1989;122:747–55.PubMedCrossRef Mumford AD, Parry LJ, Summerlee AJ. Lesion of the subfornical organ affects the haemotensive response to centrally administered relaxin in anaesthetized rats. J Endocrinol. 1989;122:747–55.PubMedCrossRef
110.
Zurück zum Zitat Otsubo H, Onaka T, Suzuki H, Katoh A, Ohbuchi T, Todoroki M, et al. Centrally administered relaxin-3 induces Fos expression in the osmosensitive areas in rat brain and facilitates water intake. Peptides. 2010;31:1124–30.PubMedCrossRef Otsubo H, Onaka T, Suzuki H, Katoh A, Ohbuchi T, Todoroki M, et al. Centrally administered relaxin-3 induces Fos expression in the osmosensitive areas in rat brain and facilitates water intake. Peptides. 2010;31:1124–30.PubMedCrossRef
111.
Zurück zum Zitat Smith CM, Walker LL, Chua BE, McKinley MJ, Gundlach AL, Denton DA, et al. Involvement of central relaxin-3 signalling in sodium (salt) appetite. Exp Physiol. 2015;100:1064–72.PubMedCrossRef Smith CM, Walker LL, Chua BE, McKinley MJ, Gundlach AL, Denton DA, et al. Involvement of central relaxin-3 signalling in sodium (salt) appetite. Exp Physiol. 2015;100:1064–72.PubMedCrossRef
112.
Zurück zum Zitat Stoner L, Lucero AA, Palmer BR, Jones LM, Young JM, Faulkner J. Inflammatory biomarkers for predicting cardiovascular disease. Clin Biochem. 2013;46:1353–71.PubMedCrossRef Stoner L, Lucero AA, Palmer BR, Jones LM, Young JM, Faulkner J. Inflammatory biomarkers for predicting cardiovascular disease. Clin Biochem. 2013;46:1353–71.PubMedCrossRef
113.••
Zurück zum Zitat Marvar PJ, Lob H, Vinh A, Zarreen F, Harrison DG. The central nervous system and inflammation in hypertension. Curr Opin Pharmacol. 2011;11:156–61. A comprehensive review on the actions of proinflammatory cytokines at the CNS and the resulting influence in hypertension. PubMedCentralPubMedCrossRef Marvar PJ, Lob H, Vinh A, Zarreen F, Harrison DG. The central nervous system and inflammation in hypertension. Curr Opin Pharmacol. 2011;11:156–61. A comprehensive review on the actions of proinflammatory cytokines at the CNS and the resulting influence in hypertension. PubMedCentralPubMedCrossRef
114.
Zurück zum Zitat Dinh QN, Drummond GR, Sobey CG, Chrissobolis S. Roles of inflammation, oxidative stress, and vascular dysfunction in hypertension. Biomed Res Int. 2014;2014:406960.PubMedCentralPubMedCrossRef Dinh QN, Drummond GR, Sobey CG, Chrissobolis S. Roles of inflammation, oxidative stress, and vascular dysfunction in hypertension. Biomed Res Int. 2014;2014:406960.PubMedCentralPubMedCrossRef
115.
Zurück zum Zitat Zhang ZH, Wei SG, Francis J, Felder RB. Cardiovascular and renal sympathetic activation by blood-borne TNF-alpha in rat: the role of central prostaglandins. Am J Physiol Regul Integr Comp Physiol. 2003;284:R916–27.PubMedCrossRef Zhang ZH, Wei SG, Francis J, Felder RB. Cardiovascular and renal sympathetic activation by blood-borne TNF-alpha in rat: the role of central prostaglandins. Am J Physiol Regul Integr Comp Physiol. 2003;284:R916–27.PubMedCrossRef
116.
Zurück zum Zitat Takahashi H, Nishimura M, Sakamoto M, Ikegaki I, Nakanishi T, Yoshimura M. Effects of interleukin-1 beta on blood pressure, sympathetic nerve activity, and pituitary endocrine functions in anesthetized rats. Am J Hypertens. 1992;5:224–9.PubMedCrossRef Takahashi H, Nishimura M, Sakamoto M, Ikegaki I, Nakanishi T, Yoshimura M. Effects of interleukin-1 beta on blood pressure, sympathetic nerve activity, and pituitary endocrine functions in anesthetized rats. Am J Hypertens. 1992;5:224–9.PubMedCrossRef
117.
Zurück zum Zitat Desson SE, Ferguson AV. Interleukin 1beta modulates rat subfornical organ neurons as a result of activation of a non-selective cationic conductance. J Physiol. 2003;550:113–22.PubMedCentralPubMedCrossRef Desson SE, Ferguson AV. Interleukin 1beta modulates rat subfornical organ neurons as a result of activation of a non-selective cationic conductance. J Physiol. 2003;550:113–22.PubMedCentralPubMedCrossRef
118.
Zurück zum Zitat Wei SG, Zhang ZH, Beltz TG, Yu Y, Johnson AK, Felder RB. Subfornical organ mediates sympathetic and hemodynamic responses to blood-borne proinflammatory cytokines. Hypertension. 2013;62:118–25.PubMedCentralPubMedCrossRef Wei SG, Zhang ZH, Beltz TG, Yu Y, Johnson AK, Felder RB. Subfornical organ mediates sympathetic and hemodynamic responses to blood-borne proinflammatory cytokines. Hypertension. 2013;62:118–25.PubMedCentralPubMedCrossRef
119.
Zurück zum Zitat Wei SG, Yu Y, Zhang ZH, Felder RB. Proinflammatory cytokines upregulate sympathoexcitatory mechanisms in the subfornical organ of the rat. Hypertension. 2015;65:1126–33.PubMedCrossRef Wei SG, Yu Y, Zhang ZH, Felder RB. Proinflammatory cytokines upregulate sympathoexcitatory mechanisms in the subfornical organ of the rat. Hypertension. 2015;65:1126–33.PubMedCrossRef
Metadaten
Titel
Neurohumoral Integration of Cardiovascular Function by the Lamina Terminalis
verfasst von
Nicole M. Cancelliere
Emily A. E. Black
Alastair V. Ferguson
Publikationsdatum
01.12.2015
Verlag
Springer US
Erschienen in
Current Hypertension Reports / Ausgabe 12/2015
Print ISSN: 1522-6417
Elektronische ISSN: 1534-3111
DOI
https://doi.org/10.1007/s11906-015-0602-9

Weitere Artikel der Ausgabe 12/2015

Current Hypertension Reports 12/2015 Zur Ausgabe

Hypertension and Metabolic Syndrome (J Sperati, Section Editor)

PPARγ Regulation in Hypertension and Metabolic Syndrome

Device-Based Approaches for Hypertension (M Schlaich, Section Editor)

Predictors of Renal Denervation Efficacy in the Treatment of Resistant Hypertension

Hypertension and the Heart (SD Solomon and O Vardeny, Section Editors)

Sleep Disordered Breathing: Hypertension and Cardiac Structure and Function

Prevention of Hypertension: Public Health Challenges (P Muntner, Section Editor)

Interventions to Improve Medication Adherence in Hypertensive Patients: Systematic Review and Meta-analysis

Pathogenesis of Hypertension (W Elliott, Section Editor)

Dysregulated Blood Pressure: Can Regulating Emotions Help?

Leitlinien kompakt für die Innere Medizin

Mit medbee Pocketcards sicher entscheiden.

Seit 2022 gehört die medbee GmbH zum Springer Medizin Verlag

Echinokokkose medikamentös behandeln oder operieren?

06.05.2024 DCK 2024 Kongressbericht

Die Therapie von Echinokokkosen sollte immer in spezialisierten Zentren erfolgen. Eine symptomlose Echinokokkose kann – egal ob von Hunde- oder Fuchsbandwurm ausgelöst – konservativ erfolgen. Wenn eine Op. nötig ist, kann es sinnvoll sein, vorher Zysten zu leeren und zu desinfizieren. 

Umsetzung der POMGAT-Leitlinie läuft

03.05.2024 DCK 2024 Kongressbericht

Seit November 2023 gibt es evidenzbasierte Empfehlungen zum perioperativen Management bei gastrointestinalen Tumoren (POMGAT) auf S3-Niveau. Vieles wird schon entsprechend der Empfehlungen durchgeführt. Wo es im Alltag noch hapert, zeigt eine Umfrage in einem Klinikverbund.

Proximale Humerusfraktur: Auch 100-Jährige operieren?

01.05.2024 DCK 2024 Kongressbericht

Mit dem demographischen Wandel versorgt auch die Chirurgie immer mehr betagte Menschen. Von Entwicklungen wie Fast-Track können auch ältere Menschen profitieren und bei proximaler Humerusfraktur können selbst manche 100-Jährige noch sicher operiert werden.

Die „Zehn Gebote“ des Endokarditis-Managements

30.04.2024 Endokarditis Leitlinie kompakt

Worauf kommt es beim Management von Personen mit infektiöser Endokarditis an? Eine Kardiologin und ein Kardiologe fassen die zehn wichtigsten Punkte der neuen ESC-Leitlinie zusammen.

Update Innere Medizin

Bestellen Sie unseren Fach-Newsletter und bleiben Sie gut informiert.