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2
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Nature. 1983;305(5935):627-30. doi: 10.1038/305627a0.
3
Characterization of alpha adrenoceptors in pial arteries of the bovine brain.牛脑软脑膜动脉中α肾上腺素能受体的特性研究
Naunyn Schmiedebergs Arch Pharmacol. 1983 Sep;324(2):88-93. doi: 10.1007/BF00497012.
4
Pharmacological characterization of postjunctional alpha-adrenoceptors in isolated feline cerebral and peripheral arteries.猫离体脑动脉和外周动脉中节后α-肾上腺素能受体的药理学特性
Acta Physiol Scand. 1983 Jan;117(1):63-73. doi: 10.1111/j.1748-1716.1983.tb07179.x.
5
Pharmacological characterization of the alpha adrenoceptors of the dog basilar artery.犬基底动脉α肾上腺素能受体的药理学特性
Naunyn Schmiedebergs Arch Pharmacol. 1982 Apr;319(1):1-7. doi: 10.1007/BF00491469.
6
Lack of specific (3H) prazosin binding sites in dog and rabbit cerebral arteries.犬和兔脑动脉中缺乏特异性(3H)哌唑嗪结合位点。
Life Sci. 1984 Nov 19;35(21):2169-76. doi: 10.1016/0024-3205(84)90518-6.
7
Dual adrenergic and cholinergic innervation of the cerebral arteries of the rat. An ultrastructural study.大鼠脑动脉的双重肾上腺素能和胆碱能神经支配。一项超微结构研究。
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8
Responsiveness of isolated cerebral and peripheral arteries to serotonin, norepinephrine, and transmural electrical stimulation.离体脑动脉和外周动脉对血清素、去甲肾上腺素及跨壁电刺激的反应性。
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9
Contractile response and amine receptor mechanisms in isolated middle cerebral artery of the cat.猫离体大脑中动脉的收缩反应及胺受体机制
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10
The innervation of the cerebral arteries.脑动脉的神经支配。
J Anat. 1973 May;115(Pt 1):53-63.

绵羊脑动脉节后α-肾上腺素能受体的药理学特性

Pharmacological characterization of postjunctional alpha-adrenoceptors in cerebral arteries from the sheep.

作者信息

Gaw A J, Wadsworth R M

机构信息

Department of Physiology and Pharmacology, University of Strathclyde, Glasgow.

出版信息

Br J Pharmacol. 1989 Nov;98(3):741-6. doi: 10.1111/j.1476-5381.1989.tb14601.x.

DOI:10.1111/j.1476-5381.1989.tb14601.x
PMID:2556201
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1854790/
Abstract
  1. The responsiveness to noradrenaline was characterized in cerebral arteries from the sheep, since this species was large enough to permit a comparison of arteries from different parts of the cerebral vasculature. 2. Noradrenaline caused contraction of the basilar artery, middle cerebral artery and small pial arteries by stimulation of alpha 1-adrenoceptors. 3. The maximum contraction to noradrenaline was small in the basilar artery (28% of the 5-hydroxytryptamine (5-HT) maximum) but larger in the middle cerebral artery (78% of the 5-HT maximum) and pial artery (92% of the 5-HT maximum) of the sheep. 4. Cocaine (10 microM) potentiated noradrenaline-induced contractions in the sheep middle cerebral artery but not in the sheep basilar artery. 5. The noradrenaline contraction, relative to the 5-HT contraction, was not affected by removal of the endothelium in either the sheep basilar or middle cerebral artery. 6. The results showed a variation within the sheep cerebral vasculature in the response to noradrenaline which cannot be explained by regional differences in alpha-adrenoceptor subtypes, noradrenaline uptake mechanisms or endothelial function.
摘要
  1. 由于绵羊体型足够大,能够对来自脑循环系统不同部位的动脉进行比较,因此对绵羊脑动脉对去甲肾上腺素的反应特性进行了研究。2. 去甲肾上腺素通过刺激α1 -肾上腺素能受体引起基底动脉、大脑中动脉和软脑膜小动脉收缩。3. 绵羊基底动脉对去甲肾上腺素的最大收缩幅度较小(为5 -羟色胺(5 - HT)最大收缩幅度的28%),但大脑中动脉(为5 - HT最大收缩幅度的78%)和软脑膜动脉(为5 - HT最大收缩幅度的92%)对去甲肾上腺素的最大收缩幅度较大。4. 可卡因(10微摩尔)增强了绵羊大脑中动脉中去甲肾上腺素诱导的收缩,但对绵羊基底动脉没有影响。5. 相对于5 - HT收缩,去甲肾上腺素收缩在绵羊基底动脉或大脑中动脉中均不受内皮去除的影响。6. 结果表明,绵羊脑循环系统内对去甲肾上腺素的反应存在差异,这无法用α -肾上腺素能受体亚型、去甲肾上腺素摄取机制或内皮功能的区域差异来解释。