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Electric Fields Caused by Blood Flow Modulate Vascular Endothelial Electrophysiology and Nitric Oxide Production

机译:血流引起的电场调节血管内皮电生理和一氧化氮生产

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摘要

Endothelial cells are exposed to a ubiquitous, yet unexamined electrical force caused by blood flow: the electrokinetic vascular streaming potential (EVSP). In this study, the hypothesis that extremely low frequency (ELF) electric fields parameterized by the EVSP have significant biological effects on endothelial cell properties was studied by measuring membrane potential and nitric oxide production under ELF stimulation between 0–2 Hz and 0–6.67 volts per meter. Using membrane potential and nitric oxide sensitive fluorescent dyes, bovine aortic endothelial cells (BAECs) in culture were studied in the presence and absence of EVSP-modeled electric fields. The transmembrane potential of BAECs was shown to depolarize between 1–7 mV with a strong dependency on both the magnitude and frequency of the isolated ELF field. The findings also support a field interaction with a frequency-dependent tuning curve. The ELF field complexly modulates the nitric oxide response to adenosine triphosphate stimulation with potentiation seen with up to a seven-fold increase. This potentiation was also frequency and magnitude dependent. An early logarithmic phase of NO production is enhanced in a field strength- dependent manner, but the ELF field does not modify a later exponential phase. This study shows that using electric fields on the order of those generated by blood flow influences the essential biology of endothelial cells. The inclusion of ELF electric fields in the paradigm of vascular biology may create novel opportunities for advancing both the understanding and therapies for treatment of vascular diseases.
机译:内皮细胞暴露于由血流量引起的普遍存在的,但未审查的电力:电动血管流势(EVSP)。在这项研究中,通过测定膜电位和在0-2Hz和0-6.67伏之间的ELF刺激下测量膜电位和一氧化氮产生,研究了由EVSP参数化的极低频率(ELF)电场的假设对内皮细胞性质具有显着的生物学效应。每米。在存在和不存在EVSP建模的电场的情况下,研究了使用膜电位和一氧化氮敏感荧光染料,培养中的牛主动脉内皮细胞(Baecs)。 Baecs的跨膜电位显示在1-7 mV之间,具有强依赖于隔离的ELF场的幅度和频率的强依赖性。调查结果还支持与频率相关的调谐曲线的字段交互。 ELF场复杂地调节对腺苷三磷酸刺激的一氧化氮反应,具有高达七倍的增长率。这种增强也依赖于频率和幅度。不依赖于场强度依赖性的未产生的早期对数阶段,但ELF字段不会修改后来的指数阶段。本研究表明,在血流产生的那些上的电场对内皮细胞的基本生物学来说,使用电场。包含在血管生物学范例中的ELF电场可能会产生新的机会,用于推进治疗血管疾病的理解和疗法。

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