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大鼠肠系膜小动脉血管运动中内皮细胞与平滑肌细胞内钙离子浓度的反相振荡

Antiphase oscillations of endothelium and smooth muscle [Ca2+]i in vasomotion of rat mesenteric small arteries.

作者信息

Rahman Awahan, Hughes Alun, Matchkov Vladimir, Nilsson Holger, Aalkjaer Christian

机构信息

The Water and Salt Center, Institute of Physiology and Biophysics, University of Aarhus, Denmark.

出版信息

Cell Calcium. 2007 Dec;42(6):536-47. doi: 10.1016/j.ceca.2007.01.007. Epub 2007 May 23.

Abstract

The mechanisms leading to vasomotion in the presence of noradrenaline and inhibitors of the sarcoplasmic/endoplasmic reticulum calcium ATPase were investigated in isolated rat mesenteric small arteries. Isobaric diameter and isometric force were measured together with membrane potential in endothelial cells and smooth muscle cells (SMC). Calcium in the endothelial cells and SMC was imaged with confocal microscopy. In the presence of noradrenaline and cyclopiazonic acid, ryanodine-insensitive oscillations in tone were produced. The frequency was about 1 min(-1) and amplitude about 70% of the maximal tone. The amplitude was reduced by indomethacin and increased with L-NAME. Vasomotion was inhibited by nifedipine and by 40 mM potassium. The frequency was increased and amplitude decreased by removal of the endothelium and by application of charybdotoxin and apamin. The vasomotion was associated with in-phase oscillations of membrane potential in endothelial cells and SMC and oscillations of [Ca2+]i that were in near anti-phase. We suggest a working model for the generation of oscillation based on a membrane oscillator where ion channels in both endothelial cells and SMC interact via a current running between the two cell types through myoendothelial gap junctions, which sets up a near anti-phase oscillation of [Ca2+]i in the two cell types.

摘要

在离体大鼠肠系膜小动脉中,研究了去甲肾上腺素和肌浆网/内质网钙ATP酶抑制剂存在时导致血管运动的机制。同时测量了内皮细胞和平滑肌细胞(SMC)的等压直径、等长张力以及膜电位。用共聚焦显微镜对内皮细胞和SMC中的钙进行成像。在去甲肾上腺素和环匹阿尼酸存在的情况下,产生了对ryanodine不敏感的张力振荡。频率约为1分钟-1,幅度约为最大张力的70%。吲哚美辛可降低幅度,L-NAME可增加幅度。硝苯地平和40 mM钾可抑制血管运动。去除内皮以及应用蝎毒素和蜂毒明肽可增加频率并降低幅度。血管运动与内皮细胞和SMC中膜电位的同相振荡以及[Ca2+]i的近反相振荡相关。我们基于膜振荡器提出了一个振荡产生的工作模型,其中内皮细胞和SMC中的离子通道通过两种细胞类型之间通过肌内皮间隙连接流动的电流相互作用,从而在两种细胞类型中建立[Ca2+]i的近反相振荡。

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