Genetic ablation of smooth muscle KIR2.1 is inconsequential to the function of mouse cerebral arteries

Paulina M Kowalewska, J. Fletcher, W. Jackson, S. Brett, Michelle S Kim, G. Mironova, Nadia Haghbin, David M. Richter, N. Tykocki, M. Nelson, D. Welsh
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引用次数: 4

Abstract

Cerebral blood flow is a finely tuned process dependent on coordinated changes in arterial tone. These changes are strongly tied to smooth muscle membrane potential and inwardly rectifying K+ (KIR) channels are thought to be a key determinant. To elucidate the role of KIR2.1 in cerebral arterial tone development, this study examined the electrical and functional properties of cells, vessels and living tissue from tamoxifen-induced smooth muscle cell (SMC)-specific KIR2.1 knockout mice. Patch-clamp electrophysiology revealed a robust Ba2+-sensitive inwardly rectifying K+ current in cerebral arterial myocytes irrespective of KIR2.1 knockout. Immunolabeling clarified that KIR2.1 expression was low in SMCs while KIR2.2 labeling was remarkably abundant at the membrane. In alignment with these observations, pressure myography revealed that the myogenic response and K+-induced dilation were intact in cerebral arteries post knockout. At the whole organ level, this translated to a maintenance of brain perfusion in SMC KIR2.1−/− mice, as assessed with arterial spin-labeling MRI. We confirmed these findings in superior epigastric arteries and implicated KIR2.2 as more functionally relevant in SMCs. Together, these results suggest that subunits other than KIR2.1 play a significant role in setting native current in SMCs and driving arterial tone.
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平滑肌KIR2.1基因消融对小鼠脑动脉功能影响不大
脑血流是一个精细调节的过程,依赖于动脉张力的协调变化。这些变化与平滑肌膜电位密切相关,而向内整流的K+ (KIR)通道被认为是一个关键的决定因素。为了阐明KIR2.1在脑动脉张力发育中的作用,本研究检测了他莫昔芬诱导的平滑肌细胞(SMC)特异性KIR2.1敲除小鼠的细胞、血管和活组织的电学和功能特性。膜片钳电生理显示,无论KIR2.1基因敲除与否,脑动脉肌细胞中都存在强大的Ba2+敏感内向整流K+电流。免疫标记表明,KIR2.1在SMCs中的表达较低,而KIR2.2在膜上的表达显著丰富。与这些观察结果一致,压力肌图显示,敲除后脑动脉的肌原性反应和K+诱导的扩张是完整的。在整个器官水平上,通过动脉自旋标记MRI评估,这转化为SMC KIR2.1 - / -小鼠脑灌注的维持。我们在腹壁上动脉中证实了这些发现,并暗示KIR2.2在SMCs中具有更大的功能相关性。综上所述,这些结果表明,KIR2.1以外的亚基在SMCs中设定原生电流和驱动动脉张力方面发挥了重要作用。
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