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Optical estimation of absolute membrane potential using fluorescence lifetime imaging

机译:使用荧光寿命成像光学估计绝对膜电位

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摘要

All cells maintain ionic gradients across their plasma membranes, producing transmembrane potentials (Vmem). Mounting evidence suggests a relationship between resting Vmem and the physiology of non-excitable cells with implications in diverse areas, including cancer, cellular differentiation, and body patterning. A lack of non-invasive methods to record absolute Vmem limits our understanding of this fundamental signal. To address this need, we developed a fluorescence lifetime-based approach (VF-FLIM) to visualize and optically quantify Vmem with single-cell resolution in mammalian cell culture. Using VF-FLIM, we report Vmem distributions over thousands of cells, a 100-fold improvement relative to electrophysiological approaches. In human carcinoma cells, we visualize the voltage response to growth factor stimulation, stably recording a 10–15 mV hyperpolarization over minutes. Using pharmacological inhibitors, we identify the source of the hyperpolarization as the Ca2+-activated K+ channel KCa3.1. The ability to optically quantify absolute Vmem with cellular resolution will allow a re-examination of its signaling roles.
机译:所有细胞在其质膜上均保持离子梯度,从而产生跨膜电位(Vmem)。越来越多的证据表明,静止的Vmem与非兴奋性细胞的生理学之间存在联系,并在包括癌症,细胞分化和人体模式在内的多个领域产生影响。缺乏记录绝对Vmem的非侵入性方法限制了我们对该基本信号的理解。为了满足这一需求,我们开发了一种基于荧光寿命的方法(VF-FLIM),以可视化和光学量化哺乳动物细胞培养物中具有单细胞分辨率的Vmem。使用VF-FLIM,我们报告了Vmem在数千个细胞中的分布,相对于电生理方法而言,提高了100倍。在人类癌细胞中,我们可视化了对生长因子刺激的电压响应,并在几分钟内稳定地记录了10-15 mV的超极化现象。使用药理学抑制剂,我们将超极化的来源确定为Ca 2 + 激活的K + 通道KCa3.1。用细胞分辨率光学定量绝对Vmem的能力将允许重新检查其信号传导作用。

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