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Nanosecond electric pulses modulate skeletal muscle calcium dynamics and contraction

机译:纳秒电脉冲调节骨骼肌钙动力学和收缩

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Irreversible electroporation therapy is utilized to remove cancerous tissues thru the delivery of rapid (250Hz) and high voltage (V) (l,500V/cm) electric pulses across microsecond durations. Clinical research demonstrated that bipolar (BP) high voltage microsecond pulses opposed to monophasic waveforms relieve muscle contraction during electroporation treatment. Our group along with others discovered that nanosecond electric pulses (nsEP) can activate second messenger cascades, induce cytoskeletal rearrangement, and depending on the nsEP duration and frequency, initiate apoptotic pathways. Of high interest across in vivo and in vitro applications, is how nsEP affects muscle physiology, and if nuances exist in comparison to longer duration electroporation applications. To this end, we exposed mature skeletal muscle cells to monopolar (MP) and BP nsEP stimulation across a wide range of electric field amplitudes (1-20 kV/cm). From live confocal microscopy, we simultaneously monitored intracellular calcium dynamics along with nsEP-induced muscle movement on a single cell level. In addition, we also evaluated membrane permeability with Yo-PRO?-l and Propidium Iodide (PI) across various nsEP parameters. The results from our findings suggest that skeletal muscle calcium dynamics, and nsEP-induced contraction exhibit exclusive responses to both MP and BP nsEP exposure. Overall the results suggest in vivo nsEP application may elicit unique physiology and field applications compared to longer pulse duration electroporation.
机译:不可逆的电穿孔治疗用于去除癌组织,通过快速(250Hz)和高压(V)(L,500V / cm)电脉冲跨微秒持续时间。临床研究表明,与单极波形相对的双极(BP)高压微秒脉冲在电穿孔处理期间缓解肌肉收缩。我们的团队与其他人一起发现纳秒电脉冲(NSEP)可以激活第二个信使级联,诱导细胞骨骼重排,并取决于NSEP持续时间和频率,引发凋亡途径。体内和体外应用中的高兴趣是NSEP如何影响肌肉生理学,以及与较长持续时间的电穿孔应用相比,存在细微差别。为此,我们将成熟的骨骼肌细胞暴露于多种电场幅度(1-20kV / cm)的单极(MP)和BP NSEP刺激。从活共聚焦显微镜检查,我们同时监测细胞内钙动力学以及NSEP诱导的单个细胞水平的肌肉运动。此外,我们还在各种NSEP参数上评估了在各种NSEP参数上用yo-proα-1和碘化丙啶(pi)的膜渗透性。我们研究结果的结果表明,骨骼肌钙动力学和NSEP诱导的收缩表现出对MP和BP NSEP暴露的独家反应。总体而言,结果表明,与较长脉冲持续时间电穿孔相比,体内NSEP应用中的结果可能引发独特的生理学和现场应用。

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