Cellular and Molecular Biophysics Lab, Department of Physics, University of South Florida, Tampa, FL 33620, USA.
J Bioenerg Biomembr. 2012 Jun;44(3):385-95. doi: 10.1007/s10863-012-9432-5. Epub 2012 Mar 28.
Blood vessel dilation starts from activation of the Na/K pumps and inward rectifier K channels in the vessel smooth muscle cells, which hyperpolarizes the cell membrane potential and closes the Ca channels. As a result, the intracellular Ca concentration reduces, and the smooth muscle cells relax and the blood vessel dilates. Activation of the Na/K pumps and the membrane potential hyperpolarization plays a critical role in blood vessel functions. Previously, we developed a new technique, synchronization modulation, to control the pump functions by electrically entraining the pump molecules. We have applied the synchronization modulation electric field noninvasively to various intact cells and demonstrated the field-induced membrane potential hyperpolarization. We further applied the electric field to blood vessels and investigated the field induced functional changes of the vessels. In this paper, we report the results in a study of the membrane potential change in the smooth muscle cells of mesenteric blood vessels in response to the oscillating electric field. We found that the synchronization modulation electric field can effectively hyperpolarize the muscle membrane potential quickly in seconds under physiological conditions.
血管扩张始于血管平滑肌细胞中 Na/K 泵和内向整流钾通道的激活,这会使细胞膜电位超极化并关闭钙通道。结果,细胞内 Ca 浓度降低,平滑肌细胞松弛,血管扩张。Na/K 泵的激活和膜电位超极化在血管功能中起着关键作用。此前,我们开发了一种新的技术,即同步调制,通过电牵引泵分子来控制泵的功能。我们已经将同步调制电场非侵入性地应用于各种完整细胞,并证明了场诱导的膜电位超极化。我们进一步将电场应用于血管,并研究了场诱导的血管功能变化。在本文中,我们报告了在研究肠系膜血管平滑肌细胞对振荡电场的反应时膜电位变化的结果。我们发现,在生理条件下,同步调制电场可以在几秒钟内快速有效地超极化肌肉细胞膜电位。