首页> 外文期刊>American Journal of Physiology >Differential activation of potassium channels in cerebral and hindquarter arteries of rats during simulated microgravity.
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Differential activation of potassium channels in cerebral and hindquarter arteries of rats during simulated microgravity.

机译:模拟微重力作用下大鼠大脑和后肢动脉钾离子通道的差异激活。

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The purpose of this study was to test the hypothesis that differential autoregulation of cerebral and hindquarter arteries during simulated microgravity is mediated or modulated by differential activation of K(+) channels in vascular smooth muscle cells (VSMCs) of arteries in different anatomic regions. Sprague-Dawley rats were subjected to 1- and 4-wk tail suspension to simulate the cardiovascular deconditioning effect due to short- and medium-term microgravity. K(+) channel function of VSMCs was studied by pharmacological methods and patch-clamp techniques. Large-conductance Ca(2+)-activated K(+) (BK(Ca)) and voltage-gated K(+) (K(v)) currents were determined by subtracting the current recorded after applications of 1 mM tetraethylammonium (TEA) and 1 mM TEA + 3 mM 4-aminopyridine (4-AP), respectively, from that of before. For cerebral vessels, the normalized contractility of basilar arterial rings to TEA, a BK(Ca) blocker, and 4-AP, a K(v) blocker, was significantly decreased after 1- and 4-wk simulated microgravity, respectively. VSMCs isolated from the middle cerebral artery branches of suspended rats had a more depolarized membrane potential (E(m)) and a smaller K(+) current density compared with those of control rats. Furthermore, the reduced total current density was due to smaller BK(Ca) and smaller K(v) current density in cerebral VSMCs after 1- and 4-wk tail suspension, respectively. For hindquarter vessels, VSMCs isolated from second- to sixth-order small mesenteric arteries of both 1- and 4-wk suspended rats had a more negative E(m) and larger K(+) current densities for total, BK(Ca), and K(v) currents. These results indicate that differential activation of K(+) channels occur in cerebral and hindquarter VSMCs during short- and medium-term simulated microgravity. It is further suggested that different profiles of channel remodeling might occur in VSMCs as one of the important underlying cellular mechanisms to mediate and modulate differential vascular adaptation during microgravity.
机译:本研究的目的是检验以下假说:在模拟微重力作用下,大脑和后肢动脉的差异自动调节是由不同解剖区域的动脉血管平滑肌细胞(VSMC)中的K(+)通道的差异激活介导或调节的。对Sprague-Dawley大鼠进行1周和4周尾部悬吊,以模拟由于短期和中期微重力而引起的心血管失调作用。通过药理学方法和膜片钳技术研究了VSMCs的K(+)通道功能。通过减去施加1 mM四乙铵(TEA)后记录的电流来确定大电导Ca(2+)激活的K(+)(BK(Ca))和电压门控的K(+)(K(v))电流)和1 mM TEA + 3 mM 4-氨基吡啶(4-AP),分别来自之前的水平。对于脑血管,分别在1和4周模拟微重力作用下,基底动脉环对TEA,BK(Ca)阻滞剂和4-AP,K(v)阻滞剂的归一化收缩力分别显着降低。从悬浮大鼠的大脑中动脉分支中分离出的VSMC与对照大鼠相比具有更大的去极化膜电位(E(m))和更小的K(+)电流密度。此外,总电流密度降低是由于分别在1和4周尾部悬吊后脑VSMC中的BK(Ca)较小和K(v)较小。对于后肢血管,从1周和4周悬浮大鼠的二至六阶小肠系膜动脉中分离出的VSMC的总BK(Ca)负E(m)更大,K(+)电流密度更大,和K(v)电流。这些结果表明,在短期和中期模拟微重力作用下,大脑和后身VSMC中会发生K(+)通道的差异激活。进一步建议在VSMC中可能发生不同的通道重塑,这是在微重力作用下介导和调节差异性血管适应的重要基础细胞机制之一。

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