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Membrane potential manipulation with visible flash lamp illumination of targeted microbeads

机译:膜电位操纵与可见闪光灯照明的靶微珠照明

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摘要

The electrical membrane potential (V-m) is a key dynamical variable of excitable membranes. Despite the tremendous success of optogenetic methods to modulate V-m with light, there are some shortcomings, such as the need of genetic manipulation and limited time resolution. Direct optical stimulation of gold nanoparticles targeted to cells is an attractive alternative because the absorbed energy heats the membrane and, thus, generates capacitive current sufficient to trigger action potentials [1, Carvalho-de-Souza et al., 2015]. However, focused laser light is required and precise location and binding of the nanoparticles cannot be assessed with a conventional microscope. We therefore examined a complementary method to manipulate V-m in a spatio-temporal fashion by non-focused visible flashlight stimulation (Xenon discharge lamp, 385-485 nm, similar to 500 mu s) of superparamagnetic microbeads. Flashlight stimulation of single beads targeted to cells resulted in transient inward currents under whole-cell patch-clamp control. The waveform of the current reflected the first time derivative of the local temperature induced by the absorbed light and subsequent heat dissipation. The maximal peak current as well as the temperature excursion scaled with the proximity to the plasma membrane. Transient illumination of light-absorbing beads, targeted to specific cellular sites via protein-protein interaction or direct micromanipulation, may provide means of rapid and spatially confined heating and electrical cell stimulation. (C) 2019 Elsevier Inc. All rights reserved.
机译:电膜电位(V-M)是易激膜的关键动态可变变量。尽管对V-M进行了光学方法的巨大成功,但有一些缺点,例如需要遗传操纵和有限的时间分辨率。由于吸收的能量加热膜,因此靶向细胞的金纳米颗粒的直接光学刺激是一种有吸引力的替代品,因此产生足以触发动作电位的电容电流[1,Carvalho-de-souza等人。,2015]。然而,需要聚焦激光并且不能用常规显微镜评估纳米颗粒的精确位置和结合。因此,我们研究了一种互补方法,以通过非聚焦的可见手电筒刺激(氙放电灯,385-485nm,类似于500μm)的超顺磁性微珠的时尚以时空方式操纵V-M。针刺刺激针对细胞的单珠刺激导致全细胞贴片控制下的瞬态内向电流。电流的波形反射了吸收光引起的局部温度的第一次衍生物和随后的散热。最大峰值电流以及温度偏移缩小为近距离等离子体膜。通过蛋白质 - 蛋白质相互作用或直接微操纵靶向特异性细胞位点的光吸收珠的瞬态照射可以提供快速和空间局限于加热和电池刺激的手段。 (c)2019 Elsevier Inc.保留所有权利。

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