• 제목/요약/키워드: hypothalamus

검색결과 366건 처리시간 0.033초

Tetramethylpyrazine이 LPS의 뇌실주입에 따른 생쥐 뇌조직의 Pro-Inflammatory Cytokines 발현에 미치는 영향 (Effect of Tetramethylpyrazine on Pro-Inflammatory Cytokine Expressions in Mouse Brain Tissue following Intracerebroventricular Lipopolysaccharide Treatment)

  • 최용석;원종우;유인우;신정원;김성준;손낙원
    • 대한본초학회지
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    • 제28권1호
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    • pp.83-90
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    • 2013
  • Objectives : Tetramethylpyrazine (TMP) is an active ingredient in Ligusticum wallichii and has a wide range of neuroprotection effects. This study investigated anti-neuroinflammatory effect of TMP on brain regions in intracerebroventricular (i.c.v.) lipopolysaccharide (LPS)-treated C57BL/6 mice. Methods : TMP was administered intraperitoneally at doses of 10, 20, and 30 mg/kg at 1 h prior to LPS (3 mg/kg) i.c.v. injection. mRNA level of pro-inflammatory cytokines, including tumor necrosis factor-${\alpha}$ (TNF-${\alpha}$), interleukin (IL)-$1{\beta}$ and IL-6, was measured in the cerebral cortex, hippocampus, and hypothalamus tissue using real-time polymerase chain reaction at 24 h after the LPS injection. Cyclooxygenase-2 (COX-2) positive cells in the hypothalamus was also observed using immunohistochemistry at 24 h after the LPS injection. Results : At a dose of 30 mg/kg TMP significantly attenuated up-regulation of TNF-${\alpha}$ and IL-$1{\beta}$ mRNA in the cerebral cortex and IL-$1{\beta}$ mRNA in the hippocampus. In the hypothalamus, doses of 20 mg/kg and 30 mg/kg TMP significantly attenuated up-regulation of TNF-${\alpha}$, IL-$1{\beta}$, and IL-6 mRNA induced by the LPS injection. In addition, TMP (30 mg/kg) significantly reduced the number of COX-2 positive cells in the hypothalamus. Conclusion : These results indicate that TMP has an anti-inflammatory effect on neuroinflammation, especially in the hypothalamus, induced by LPS i.c.v. injection and suggest that TMP-containing Ligusticum wallichii may play a modulatory role on the systemic responses following hypothalamic inflammation.

난소 절제 흰쥐의 뇌와 부신에서의 Catecholamine Biosynthesizing Enzyme들의 전사에 미치는 Estrogen의 효과 (Effects of Estrogen on the Transcriptional Activities of Catecholamine Biosynthesizing Enzymes in the Brain and Adrenal Gland of Ovariectomized Rats)

  • 유경신;이종화;최돈찬;이성호
    • 한국발생생물학회지:발생과생식
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    • 제6권2호
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    • pp.117-122
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    • 2002
  • 포유동물에서 뇌와 부신에서 합성ㆍ분비되는 카테콜아민(Catecholamine, CA)계 신경전달물질인 dopamine(DA), norepinephrine(NE), epinephrine(E)은 체내 각종 생리현상의 조절에 필수적이며, 생식과 관련된 기능으로는 시상하부와 뇌하수체 사이의 GnRH-gonadotropin 호르몬 축의 활성을 조절함 외에도 번식과 연관된 여러 행동양식을 조절함이 잘 알려져 있다. 본 연구는 카테콜아민 생합성 효소인 tyrosine hydroxylase(TH), dopamine $\beta$ -hydroxylase(DBH), phenylethaolamine-N-methyl transferase(PNMT)의 유전자 발현에 영향을 미치는 sex steroid의 영향을 조사하였다. 성숙한 암컷 흰쥐의 난소를 제거(ovariectomy, OVX)하고 1주 경과 후 실험군과 대조군에 각각 17$\beta$-estradiol(E$_2$; 500$\mu\textrm{g}$/m1)이 들어 있는 silastic capsule과 sesame oil이 들어 있는 silastic capsule을 이식시키고 48시간 후에 희생시켰다. 채취된 조직에서 mRNA를 추출한 후 semi-quantitative reverse transcription-polymerase chain reaction(RT-PCR)을 시행하였다. 그 결과로 (i) TH의 발현 정도는 OVX+Oil군에서는 시상하부 > Substantia nigra(SNc) > 부신 순으로, OVX+E$_2$군에서는 SNc ) 시상하부 > 부신 순으로 나타났다. TH발현에 미치는 estradiol의 효과로 SNc와 부신에서는 유의한 증가를 보인데 비해 시상하부에서는 유의한 감소를 관찰하였다. (ⅱ) DBH 발현 정도는 OVX+Oil군과 OVXi+E$_2$군에서 모두 부신 > SNc > 시상하부 순으로 나타났다. DBH 발현에 미치는 estradiol의 효과로 SNc에서는 유의한 감소를, 부신에서는 유의한 증가를, 그리고 시상하부에서는 감소하였으나 통계적 유의성이 없었다. (ⅲ) PNMT의 발현의 경우 SNc와 시상하부에서는 이미 알려진 바와 같이 alternative splicing에 의해 110bp 차이의 크고 작은 두 형태의 cDNA(PNMT과 PNMTSs가 증폭되었으나 부신에서는 작은 cDNA(PNMTs)만이 관찰되었다. PNMT1의 발현은 SNc가 시상하부보다 다소 높은 경향이었으나 유의성이 없었고, PNMTs의 발현정도는 OVX+Oil군과 OVX+E$_2$군 모두에서 부신 > SNC >시상하부 순으로 나타났다. PNMTs 발현에 미치는 estradiol의 효과로 SNc에서는 유의한 감소를, 부신에서는 유의한 증가를, 그리고 시상하부에서는 통계적 유의성은 없으나 증가하는 경향을 보였다. 본 연구에서는 카테콜아민 생합성 효소들의 유전자 발현의 조절에 미치는 estrogen의 영향이 세포기원이 neural crest cell인 부신 수질은 물론 뇌의 상이한 지역간에서도 조직특이적임을 관찰하였다. 이러한 결과는 각 조직에서의 estrogen 수용체 유형의 차이, 작용 모드와 각 효소 유전자 발현 사이에 중요한 상관관계가 있음을 시사한다.

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일산화탄소가 뇌내 신경전달물질 및 그 합성효소에 미치는 영향 (Effect of Carbon Monoxide on the Monoamine Neurotansmitter and Synthetic Enzyme in Rat Brains)

  • 윤재순
    • 약학회지
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    • 제34권6호
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    • pp.384-394
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    • 1990
  • We studied the effect of carbon monoxide(CO)-induced bypoxia on monoamine neurotransmitter and their syntheitc enzyme in rat brain. When the rats were acute or chronic intoxicated at CO 5000 ppm for 30 minutes or 2000 ppm for 1 week each 3 hours, dopamine content increased significantly with decreasing of its turnover in striatum and norepinephrine content was diminished in hypothalamus. 5-hydroxytryptamine content was increased significantly and its turnover was decreased both in striatum and hypothalamus. Tyrosine hydroxylase activity was reduced in striatum. These results suggest that inhibition of TH activity in CO-induced hypoxia is owing to lack of oxygen supply threfore NE content is decreased. We suggest that increasing of dopamine and 5-hydroxytryptamine are due to reduction of its turnover.

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선천성 고혈압 쥐에서 고혈압 지속현상과 중추신경계 노르아드레날린성 신경활성과의 상관성 (Relationship between Maintenance of Hypertension and Central Noradrenergic Nervous System Activity in Spontaneously Hypertensive Rats)

  • 고광호;신재수;김미영
    • 약학회지
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    • 제30권6호
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    • pp.334-342
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    • 1986
  • The relationship between the maintenance of hypertension and the central noradrenergic nervous system activity in spontaneously hypertensive rats (SHR) was studied. The norepinephrine turnover rates in 5 brain areas; telencephalon, hypothalamus/thalamus, midbrain, pons/medulla, cerebellum as a measure of noradrenergic neuronal activity were measured at the ages of 14 weeks in SHR and normotensive Wistar rats. In 14-week old SHR, blood pressure was significantly higher than in normotensive rat, and central norepinephrine turnover rates were significantly greater in telencephalon, hypothalamus/thalamus, midbrain. There were no differences between norepinephrine turnover rates in pons/medulla, cerebellum of SHR and those of normotensive rats.

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중추 노르아드레날린성 신경계 및 황체호르몬 분비 촉진호르몬에 대한 테스토스테론의 영향 (Effect of Testosterone on Central Noradrenergic Nervous System and LHRH)

  • 고홍숙;김경진;박종세;고광호
    • 약학회지
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    • 제35권4호
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    • pp.295-300
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    • 1991
  • Ralationship between noradrenergic nervous system activity and luteinizing hormone releasing hormone(LHRH) content mediated by testosterone in hypothalamus was tested. Three groups of adult male animals were prepared; (1) Intact; (2) Castration+Vehicle (Cast+V); (3) Castration+Testosterone (Cast+T). Silastic capsule containing vehicle or testosterone was implanted into neck region of animals two weeks following castration. Norepinephrine content, alpha-adrenergic receptor binding characteristics using H$^{3}$-WB4101, and content of LHRH by LHRH RIA procedure were determined. Testosterone replacement to castrated male rats augmented the content of norepinephrine and LHRH. Testosterone replacement increased the alpha-adrenergic receptor density but did not change alpha-receptor affinity. The data from the present study suggest that increase in LHRH content by testosterone may be positively coupled to the activity of central noradrenergic nervous system.

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HPLC-ECD에 의한 흰쥐 뇌 부위별 Catecholamine 및 대사산물의 신속정량법 (Determination of Catecholamines and Their Metabolites in Rat Brain by High Performance Liquid Chromatography with Electrochemical Detector)

  • 노일협
    • 약학회지
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    • 제32권1호
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    • pp.50-54
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    • 1988
  • A simple and sensitive method was studied for the simultaneous determination of catecholamine, indoleamine and their related metabolites by high performance liquid chromatography with electrochemical detector. Norepinephrine, dopamine, serotonin and their metabolites of 3,4-dihydroxyphenylacetic acid, homovanillic acid, 5-indoleacetic acid were resolved from rat brain tissue homogenates by separation on reversed phase $C_{18}$ column with mobile phase consisting of monochloroacetate buffer (pH2.47), 1.42mM sodium octyl sulfonate and 7% acetonitrile. Both catechols and indoles can be eluted in 15min. The sensitivities of this method are sufficient for determination of at least 100 pg of neurochemical amines in brain samples, for example, frontal cortex, olfactory bulb, striatum, septum, hippocampus, thalamus, hypothalamus, medulla & pons and cerebellum. The highest level of dopamine was observed in striatum whereas norepinephrine and serotonin were in hypothalamus.

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The Relationship between Hypertension and Central Serotonergic Nervous System Activity in Spontaneously Hypertensive Rats

  • Kim, Sung-Jin;Ko, Kwang-Ho
    • Archives of Pharmacal Research
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    • 제11권4호
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    • pp.301-307
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    • 1988
  • Relationship between the maintenance of hypertension and central serotonergic nervous system activity in opontaneously hypertensive rats (SHR) was studied. Serotonin turnover-rates were measured in 5 brain areas as an index of serotonergic neuronal activity and compared at the ages of 14 weeks in two types of animals; (1) spontaneously hypertensive rats (SHR) (2) normotensive wistar kyoto rats (WKY). In 14-week old SHR, central serotonin turnover rate was significantly lower in telencephalon, hypothalamus/thalamus and midbrain than normotensive rat, but significantly higher in cerebellum. There were no significant differences between serotonin turnover rate in pons/medulla of SHR and that of normotensive rat. THese data suggest that the abnormally lower turnover rates of serotonin in telencephalon, hypothalamus/thalamus and midbrain may be one of the underlying neuronal factors for manifestation of hypertension in SHR.

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Alteration of G$\beta$ Expression in Rat Brain by Stress

  • Myung, Chang-Seon
    • 대한약학회:학술대회논문집
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    • 대한약학회 2003년도 Proceedings of the Convention of the Pharmaceutical Society of Korea Vol.2-2
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    • pp.83.1-83.1
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    • 2003
  • The heterotrimeric G protein subunits (G ) are region-specifically expressed in brain such as hypothalamus and pituitary gland in abundant, suggesting that is may be associated with “stress-axis”. This study was designed to examine the effect of stress on the region-specific expression of various G subunits in rat brain. The localization of mRNAs encoding seven of G and striking region-specific patterns of expression were observed in 12 different regions of both non-stressed and stressed rat brain; (1) frontal cortex area, (2) cerebral cortex area, (3) striatum, (4) hippocampus area, (5) thalamus, (6) brain stem, (7) cerebellum area, (8) hypothalamus, (9) septum, (10) amygdala, (11) preoptic area, and (12) pituitary gland. (omitted)

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