-
1
-
-
0041883664
-
The sensory circumventricular organs of the mammalian brain
-
1-122, back cover
-
McKinley MJ, McAllen RM, Davern P, et al. The sensory circumventricular organs of the mammalian brain. Adv Anat Embryol Cell Biol 2003;172:III-XII, 1-122, back cover.
-
(2003)
Adv Anat Embryol Cell Biol
, vol.172
, pp. 3-12
-
-
McKinley, M.J.1
McAllen, R.M.2
Davern, P.3
-
2
-
-
34347358488
-
The sensory circumventricular organs: Brain targets for circulating signals controlling ingestive behavior
-
DOI 10.1016/j.physbeh.2007.04.003, PII S0031938407001308
-
Fry M, Ferguson AV. The sensory circumventricular organs: brain targets for circulating signals controlling ingestive behavior. Physiol Behav 2007;91:413-423. (Pubitemid 47016535)
-
(2007)
Physiology and Behavior
, vol.91
, Issue.4
, pp. 413-423
-
-
Fry, M.1
Ferguson, A.V.2
-
3
-
-
78651082269
-
Sensory circumventricular organs in health and disease
-
Siso S, Jeffrey M, Gonzalez L. Sensory circumventricular organs in health and disease. Acta Neuropathol 2010;120: 689-705.
-
(2010)
Acta Neuropathol
, vol.120
, pp. 689-705
-
-
Siso, S.1
Jeffrey, M.2
Gonzalez, L.3
-
4
-
-
40449138261
-
The area postrema: A brain monitor and integrator of systemic autonomic state
-
DOI 10.1177/1073858407311100
-
Price CJ, Hoyda TD, Ferguson AV. The area postrema: a brain monitor and integrator of systemic autonomic state. Neuroscientist 2008;14:182-194. (Pubitemid 351348111)
-
(2008)
Neuroscientist
, vol.14
, Issue.2
, pp. 182-194
-
-
Price, C.J.1
Hoyda, T.D.2
Ferguson, A.V.3
-
5
-
-
0027211759
-
Sensory circumventricular organs and brain homeostatic pathways
-
Johnson AK, Gross PM. Sensory circumventricular organs and brain homeostatic pathways. FASEB J 1993;7:678-686. (Pubitemid 23163603)
-
(1993)
FASEB Journal
, vol.7
, Issue.8
, pp. 678-686
-
-
Johnson, A.K.1
Gross, P.M.2
-
6
-
-
33748255730
-
Transient receptor potential vanilloid 1 is required for intrinsic osmoreception in organum vasculosum lamina terminalis neurons and for normal thirst responses to systemic hyperosmolality
-
DOI 10.1523/JNEUROSCI.0877-06.2006
-
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;26:9069-9075. (Pubitemid 44319398)
-
(2006)
Journal of Neuroscience
, vol.26
, Issue.35
, pp. 9069-9075
-
-
Ciura, S.1
Bourque, C.W.2
-
7
-
-
23944500881
-
Brain angiotensin II: New developments, unanswered questions and therapeutic opportunities
-
DOI 10.1007/s10571-005-4011-5
-
Saavedra JM. Brain angiotensin II: new developments, unanswered questions and therapeutic opportunities. Cell Mol Neurobiol 2005;25:485-512. (Pubitemid 41199709)
-
(2005)
Cellular and Molecular Neurobiology
, vol.25
, Issue.3-4
, pp. 485-512
-
-
Saavedra, J.M.1
-
8
-
-
64949190917
-
Gastrointestinal hormone actions in the central regulation of energy metabolism: Potential sensory roles for the circumventricular organs
-
Hoyda TD, Smith PM, Ferguson AV. Gastrointestinal hormone actions in the central regulation of energy metabolism: potential sensory roles for the circumventricular organs. Int J Obes 2009;33(suppl 1):S16-S21.
-
(2009)
Int J Obes
, vol.33
, Issue.SUPPL. 1
-
-
Hoyda, T.D.1
Smith, P.M.2
Ferguson, A.V.3
-
9
-
-
70349260857
-
Identification and functional characterization of the promoter of the mouse sodium-activated sodium channel Na (x) gene (Scn7a)
-
Garcia-Villegas R, Lopez-Alvarez LE, Arni S, Rosenbaum T, Morales MA. Identification and functional characterization of the promoter of the mouse sodium-activated sodium channel Na (x) gene (Scn7a). J Neurosci Res 2009; 87:2509-2519.
-
(2009)
J Neurosci Res
, vol.87
, pp. 2509-2519
-
-
Garcia-Villegas, R.1
Lopez-Alvarez, L.E.2
Arni, S.3
Rosenbaum, T.4
Morales, M.A.5
-
10
-
-
34247204699
-
Hydromineral neuroendocrinology: Mechanism of sensing sodium levels in the mammalian brain
-
DOI 10.1113/expphysiol.2006.035659
-
Noda M. Hydromineral neuroendocrinology: mechanism of sensing sodium levels in the mammalian brain. Exp Physiol 2007;92:513-522. (Pubitemid 46608414)
-
(2007)
Experimental Physiology
, vol.92
, Issue.3
, pp. 513-522
-
-
Noda, M.1
-
11
-
-
0034931194
-
Peripheral and central interactions between the renin-angiotensin system and the renal sympathetic nerves in control of renal function
-
DiBona GF. Peripheral and central interactions between the renin-angiotensin system and the renal sympathetic nerves in control of renal function. Ann NY Acad Sci 2001;940:395-406. (Pubitemid 32623410)
-
(2001)
Annals of the New York Academy of Sciences
, vol.940
, pp. 395-406
-
-
DiBona, G.F.1
-
12
-
-
0035824278
-
Subfornical organ neurons projecting to paraventricular nucleus: Whole-cell properties
-
DOI 10.1016/S0006-8993(01)03093-1, PII S0006899301030931
-
Anderson JW, Smith PM, Ferguson AV. Subfornical organ neurons projecting to paraventricular nucleus: wholecell properties. Brain Res 2001;921:78-85. (Pubitemid 33096286)
-
(2001)
Brain Research
, vol.921
, Issue.1-2
, pp. 78-85
-
-
Anderson, J.W.1
Smith, P.M.2
Ferguson, A.V.3
-
13
-
-
78049492323
-
Minireview: Aldosterone and mineralocorticoid receptors: Past, present, and future
-
Funder JW. Minireview: aldosterone and mineralocorticoid receptors: past, present, and future. Endocrinology 2010;151:5098-5102.
-
(2010)
Endocrinology
, vol.151
, pp. 5098-5102
-
-
Funder, J.W.1
-
14
-
-
79956193591
-
Mineralocorticoid actions in the brain and hypertension
-
Huang BS, Leenen FH. Mineralocorticoid actions in the brain and hypertension. Curr Hypertens Rep 2011;13: 214-220.
-
(2011)
Curr Hypertens Rep
, vol.13
, pp. 214-220
-
-
Huang, B.S.1
Leenen, F.H.2
-
15
-
-
34548779887
-
Sodium deprivation and salt intake activate separate neuronal subpopulations in the nucleus of the solitary tract and the parabrachial complex
-
DOI 10.1002/cne.21452
-
Geerling JC, Loewy AD. Sodium deprivation and salt intake activate separate neuronal subpopulations in the nucleus of the solitary tract and the parabrachial complex. J Comp Neurol 2007;504:379-403. (Pubitemid 47437202)
-
(2007)
Journal of Comparative Neurology
, vol.504
, Issue.4
, pp. 379-403
-
-
Geerling, J.C.1
Loewy, A.D.2
-
16
-
-
34250217818
-
Circulating angiotensin II and dietary salt: Converging signals for neurogenic hypertension
-
DOI 10.1007/s11906-007-0041-3
-
Osborn JW, Fink GD, Sved AF, Toney GM, Raizada MK. Circulating angiotensin II and dietary salt: converging signals for neurogenic hypertension. Curr Hypertens Rep 2007;9:228-235. (Pubitemid 46900043)
-
(2007)
Current Hypertension Reports
, vol.9
, Issue.3
, pp. 228-235
-
-
Osborn, J.W.1
Fink, G.D.2
Sved, A.F.3
Toney, G.M.4
Raizada, M.K.5
-
17
-
-
34447285993
-
Circulating angiotensin II attenuates the sympathetic baroreflex by reducing the barosensitivity of medullary cardiovascular neurones in the rat
-
DOI 10.1113/jphysiol.2007.128983
-
McMullan S, Goodchild AK, Pilowsky PM. Circulating angiotensin II attenuates the sympathetic baroreflex by reducing the barosensitivity of medullary cardiovascular neurones in the rat. J Physiol 2007;582:711-722. (Pubitemid 47040554)
-
(2007)
Journal of Physiology
, vol.582
, Issue.2
, pp. 711-722
-
-
McMullan, S.1
Goodchild, A.K.2
Pilowsky, P.M.3
-
18
-
-
33847301414
-
Vasopressin V1A receptor enhances baroreflex via the central component of the reflex arc
-
DOI 10.1016/j.ejphar.2006.11.063, PII S0014299906013975
-
Oikawa R, Nasa Y, Ishii R, et al. Vasopressin V1A receptor enhances baroreflex via the central component of the reflex arc. Eur J Pharmacol 2007;558:144-150. (Pubitemid 46328887)
-
(2007)
European Journal of Pharmacology
, vol.558
, Issue.1-3
, pp. 144-150
-
-
Oikawa, R.1
Nasa, Y.2
Ishii, R.3
Kuwaki, T.4
Tanoue, A.5
Tsujimoto, G.6
Takeo, S.7
-
19
-
-
33646727171
-
V1a vasopressin receptors maintain normal blood pressure by regulating circulating blood volume and baroreflex sensitivity
-
Koshimizu TA, Nasa Y, Tanoue A, et al. V1a vasopressin receptors maintain normal blood pressure by regulating circulating blood volume and baroreflex sensitivity. Proc Natl Acad Sci USA 2006;103:7807-7812.
-
(2006)
Proc Natl Acad Sci USA
, vol.103
, pp. 7807-7812
-
-
Koshimizu, T.A.1
Nasa, Y.2
Tanoue, A.3
-
20
-
-
0033976228
-
Localization of hindbrain glucoreceptive sites controlling food intake and blood glucose
-
DOI 10.1016/S0006-8993(99)02327-6, PII S0006899399023276
-
Ritter S, Dinh TT, Zhang Y. Localization of hindbrain glucoreceptive sites controlling food intake and blood glucose. Brain Res 2000;856:37-47. (Pubitemid 30085509)
-
(2000)
Brain Research
, vol.856
, Issue.1-2
, pp. 37-47
-
-
Ritter, S.1
Dinh, T.T.2
Zhang, Y.3
-
21
-
-
0035803984
-
Central neurocircuitry associated with emesis
-
PII S000293430100849X
-
Hornby PJ. Central neurocircuitry associated with emesis. Am J Med 2001;111(suppl 8A):106S-112S. (Pubitemid 34032001)
-
(2001)
American Journal of Medicine
, vol.111
, Issue.8 SUPPL. 1
-
-
Hornby, P.J.1
-
23
-
-
0037449453
-
Area postrema mediates gastric motor response induced by apomorphine in rats
-
DOI 10.1016/S0006-8993(02)03801-5, PII S0006899302038015
-
Koga T, Kobashi M, Mizutani M, Tsukamoto G, Matsuo R. Area postrema mediates gastric motor response induced by apomorphine in rats. Brain Res 2003;960:122-131. (Pubitemid 36044568)
-
(2003)
Brain Research
, vol.960
, Issue.1-2
, pp. 122-131
-
-
Koga, T.1
Kobashi, M.2
Mizutani, M.3
Tsukamoto, G.4
Matsuo, R.5
-
24
-
-
0035066802
-
Neural mechanisms of motion sickness
-
Takeda N, Morita M, Horii A, Nishiike S, Kitahara T, Uno A. Neural mechanisms of motion sickness. J Med Invest 2001;48:44-59. (Pubitemid 32290732)
-
(2001)
Journal of Medical Investigation
, vol.48
, Issue.1-2
, pp. 44-59
-
-
Takeda, N.1
Morita, M.2
Horii, A.3
Nishiike, S.4
Kitahara, T.5
Uno, A.6
-
25
-
-
78650375895
-
Update and new trends in antiemetic therapy: The continuing need for novel therapies
-
Feyer P, Jordan K. Update and new trends in antiemetic therapy: the continuing need for novel therapies. Ann Oncol 2010;22:30-38.
-
(2010)
Ann Oncol
, vol.22
, pp. 30-38
-
-
Feyer, P.1
Jordan, K.2
-
26
-
-
0037320253
-
Molecular insights on the cerebral innate immune system
-
DOI 10.1016/S0889-1591(02)00055-7, PII S0889159102000557
-
Rivest S. Molecular insights on the cerebral innate immune system. Brain Behav Immun 2003;17:13-19. (Pubitemid 36207597)
-
(2003)
Brain, Behavior, and Immunity
, vol.17
, Issue.1
, pp. 13-19
-
-
Rivest, S.1
-
27
-
-
34347268434
-
Brain-immune communication pathways
-
DOI 10.1016/j.bbi.2007.05.005, PII S0889159107001158
-
Quan N, Banks WA. Brain-immune communication pathways. Brain Behav Immun 2007;21:727-735. (Pubitemid 47002217)
-
(2007)
Brain, Behavior, and Immunity
, vol.21
, Issue.6
, pp. 727-735
-
-
Quan, N.1
Banks, W.A.2
-
28
-
-
33751192075
-
Circulating interleukin-6 induces fever through a STAT3-linked activation of COX-2 in the brain
-
Rummel C, Sachot C, Poole S, Luheshi GN. Circulating interleukin-6 induces fever through a STAT3-linked activation of COX-2 in the brain. Am J Physiol 2006;291:R1316-R1326.
-
(2006)
Am J Physiol
, vol.291
-
-
Rummel, C.1
Sachot, C.2
Poole, S.3
Luheshi, G.N.4
-
29
-
-
14044279966
-
Toll-like receptor 4 on nonhematopoietic cells sustains CNS inflammation during endotoxemia, independent of systemic cytokines
-
DOI 10.1523/JNEUROSCI.4268-04.2005
-
Chakravarty S, Herkenham M. Toll-like receptor 4 on nonhematopoietic cells sustains CNS inflammation during endotoxemia, independent of systemic cytokines. J Neurosci 2005;25:1788-1796. (Pubitemid 40279284)
-
(2005)
Journal of Neuroscience
, vol.25
, Issue.7
, pp. 1788-1796
-
-
Chakravarty, S.1
Herkenham, M.2
-
30
-
-
48949117580
-
The blood-central nervous system barriers actively control immune cell entry into the central nervous system
-
DOI 10.2174/138161208784705432
-
Engelhardt B. The blood-central nervous system barriers actively control immune cell entry into the central nervous system. Curr Pharmaceutical Design 2008;14:1555-1565. (Pubitemid 352002983)
-
(2008)
Current Pharmaceutical Design
, vol.14
, Issue.16
, pp. 1555-1565
-
-
Engelhardt, B.1
-
31
-
-
77952291869
-
African trypanosome infections of the nervous system: Parasite entry and effects on sleep and synaptic functions
-
Kristensson K, Nygard M, Bertini G, Bentivoglio M. African trypanosome infections of the nervous system: parasite entry and effects on sleep and synaptic functions. Prog Neurobiol 2010;91:152-171.
-
(2010)
Prog Neurobiol
, vol.91
, pp. 152-171
-
-
Kristensson, K.1
Nygard, M.2
Bertini, G.3
Bentivoglio, M.4
-
32
-
-
13844255658
-
Science review: The brain in sepsis - Culprit and victim
-
DOI 10.1186/cc2951
-
Sharshar T, Hopkinson NS, Orlikowski D, Annane D. Science review: the brain in sepsis: culprit and victim. Crit Care 2005;9:37-44. (Pubitemid 40246769)
-
(2005)
Critical Care
, vol.9
, Issue.1
, pp. 37-44
-
-
Sharshar, T.1
Hopkinson, N.S.2
Orlikowski, D.3
Annane, D.4
-
33
-
-
78249248016
-
Intractable vomiting as the initial presentation of neuromyelitis optica
-
Apiwattanakul M, Popescu BF, Matiello M, et al. Intractable vomiting as the initial presentation of neuromyelitis optica. Ann Neurol 2010;68:757-761.
-
(2010)
Ann Neurol
, vol.68
, pp. 757-761
-
-
Apiwattanakul, M.1
Popescu, B.F.2
Matiello, M.3
-
34
-
-
79954583376
-
Neuromyelitis optica unique area postrema lesions: Nausea, vomiting, and pathogenic implications
-
Popescu BF, Lennon VA, Parisi JE, et al. Neuromyelitis optica unique area postrema lesions: nausea, vomiting, and pathogenic implications. Neurology 2011;76: 1229-1237.
-
(2011)
Neurology
, vol.76
, pp. 1229-1237
-
-
Popescu, B.F.1
Lennon, V.A.2
Parisi, J.E.3
-
35
-
-
79954421374
-
The central nervous system and inflammation in hypertension
-
Marvar PJ, Lob H, Vinh A, Zarreen F, Harrison DG. The central nervous system and inflammation in hypertension. Curr Opin Pharmacol 2010;11:156-161.
-
(2010)
Curr Opin Pharmacol
, vol.11
, pp. 156-161
-
-
Marvar, P.J.1
Lob, H.2
Vinh, A.3
Zarreen, F.4
Harrison, D.G.5
|