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    Results: 1 to 20 of 484

    1.

    Involvement of hypothalamic histamine H1 receptor in the regulation of feeding rhythm and obesity.

    Masaki T, Chiba S, Yasuda T, Noguchi H, Kakuma T, Watanabe T, Sakata T, Yoshimatsu H.

    Diabetes. 2004 Sep;53(9):2250-60.PMID: 15331534 [PubMed - indexed for MEDLINE]Related articlesFree article

    2.

    Neuronal histamine regulates food intake, adiposity, and uncoupling protein expression in agouti yellow (A(y)/a) obese mice.

    Masaki T, Chiba S, Yoshimichi G, Yasuda T, Noguchi H, Kakuma T, Sakata T, Yoshimatsu H.

    Endocrinology. 2003 Jun;144(6):2741-8.PMID: 12746338 [PubMed - indexed for MEDLINE]Related articlesFree article

    3.

    Hypothalamic neuronal histamine regulates body weight through the modulation of diurnal feeding rhythm.

    Yoshimatsu H.

    Nutrition. 2008 Sep;24(9):827-31. Review.PMID: 18725079 [PubMed - indexed for MEDLINE]Related articles

    4.

    Central infusion of histamine reduces fat accumulation and upregulates UCP family in leptin-resistant obese mice.

    Masaki T, Yoshimatsu H, Chiba S, Watanabe T, Sakata T.

    Diabetes. 2001 Feb;50(2):376-84.PMID: 11272150 [PubMed - indexed for MEDLINE]Related articlesFree article

    5.

    Targeted disruption of histamine H1-receptor attenuates regulatory effects of leptin on feeding, adiposity, and UCP family in mice.

    Masaki T, Yoshimatsu H, Chiba S, Watanabe T, Sakata T.

    Diabetes. 2001 Feb;50(2):385-91.PMID: 11272151 [PubMed - indexed for MEDLINE]Related articlesFree article

    6.

    Corticotropin-releasing hormone-mediated pathway of leptin to regulate feeding, adiposity, and uncoupling protein expression in mice.

    Masaki T, Yoshimichi G, Chiba S, Yasuda T, Noguchi H, Kakuma T, Sakata T, Yoshimatsu H.

    Endocrinology. 2003 Aug;144(8):3547-54.PMID: 12865337 [PubMed - indexed for MEDLINE]Related articlesFree article

    7.

    Obesity in insulin receptor substrate-2-deficient mice: disrupted control of arcuate nucleus neuropeptides.

    Masaki T, Chiba S, Noguchi H, Yasuda T, Tobe K, Suzuki R, Kadowaki T, Yoshimatsu H.

    Obes Res. 2004 May;12(5):878-85.PMID: 15166310 [PubMed - indexed for MEDLINE]Related articles

    8.

    Peripheral, but not central, administration of adiponectin reduces visceral adiposity and upregulates the expression of uncoupling protein in agouti yellow (Ay/a) obese mice.

    Masaki T, Chiba S, Yasuda T, Tsubone T, Kakuma T, Shimomura I, Funahashi T, Matsuzawa Y, Yoshimatsu H.

    Diabetes. 2003 Sep;52(9):2266-73.PMID: 12941765 [PubMed - indexed for MEDLINE]Related articlesFree article

    9.

    Severe leptin resistance in brown fat-deficient uncoupling protein promoter-driven diphtheria toxin A mice despite suppression of hypothalamic neuropeptide Y and circulating corticosterone concentrations.

    Mantzoros CS, Frederich RC, Qu D, Lowell BB, Maratos-Flier E, Flier JS.

    Diabetes. 1998 Feb;47(2):230-8. Erratum in: Diabetes 1998 May;47(5):855. PMID: 9519718 [PubMed - indexed for MEDLINE]Related articles

    10.

    The effect of moxonidine on feeding and body fat in obese Zucker rats: role of hypothalamic NPY neurones.

    Bing C, King P, Pickavance L, Brown M, Ziegler D, Kaan E, Williams G.

    Br J Pharmacol. 1999 May;127(1):35-42.PMID: 10369453 [PubMed - indexed for MEDLINE]Related articlesFree article

    11.

    The hypothalamic H1 receptor: a novel therapeutic target for disrupting diurnal feeding rhythm and obesity.

    Masaki T, Yoshimatsu H.

    Trends Pharmacol Sci. 2006 May;27(5):279-84. Epub 2006 Apr 11. Review.PMID: 16584790 [PubMed - indexed for MEDLINE]Related articles

    12.

    Resistance to the anorexic and thermogenic effects of centrally administrated leptin in obese aged rats.

    Shek EW, Scarpace PJ.

    Regul Pept. 2000 Aug 25;92(1-3):65-71.PMID: 11024567 [PubMed - indexed for MEDLINE]Related articles

    14.

    Differential expression of hypothalamic CART mRNA in response to body weight change following different dietary interventions.

    Yu Y, South T, Wang Q, Huang XF.

    Neurochem Int. 2008 Jun;52(8):1422-30. Epub 2008 Mar 30.PMID: 18455834 [PubMed - indexed for MEDLINE]Related articles

    18.

    Hypothalamic neuronal histamine as a target of leptin in feeding behavior.

    Yoshimatsu H, Itateyama E, Kondou S, Tajima D, Himeno K, Hidaka S, Kurokawa M, Sakata T.

    Diabetes. 1999 Dec;48(12):2286-91.PMID: 10580415 [PubMed - indexed for MEDLINE]Related articlesFree article

    19.

    Hyperleptinemia, visceral adiposity, and decreased glucose tolerance in mice with a targeted disruption of the histidine decarboxylase gene.

    Fülöp AK, Földes A, Buzás E, Hegyi K, Miklós IH, Romics L, Kleiber M, Nagy A, Falus A, Kovács KJ.

    Endocrinology. 2003 Oct;144(10):4306-14. Epub 2003 Jun 26.PMID: 12960041 [PubMed - indexed for MEDLINE]Related articlesFree article

    20.

    Distribution of galanin messenger RNA-expressing cells in murine brain and their regulation by leptin in regions of the hypothalamus.

    Cheung CC, Hohmann JG, Clifton DK, Steiner RA.

    Neuroscience. 2001;103(2):423-32.PMID: 11246157 [PubMed - indexed for MEDLINE]Related articles

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