Department of Neuro-Oncology, University Clinic Heidelberg, Heidelberg, Germany.
PLoS One. 2013;8(3):e58260. doi: 10.1371/journal.pone.0058260. Epub 2013 Mar 13.
The ability to monitor changes in membrane potential is a useful tool for studying neuronal function, but there are only limited options available at present. Here, we have investigated the potential of a commercially available FLIPR membrane potential (FMP) dye, developed originally for high throughput screening using a plate reader, for imaging the membrane potential of cultured cells using an epifluorescence-based single cell imaging system. We found that the properties of the FMP dye make it highly suitable for such imaging since 1) its fluorescence displayed a high signal-to-noise ratio, 2) robust signals meant only minimal exposure times of around 5 ms were necessary, and 3) bidirectional changes in fluorescence were detectable resulting from hyper- or depolarising conditions, reaching equilibrium with a time constant of 4-8 s. Measurements were possible independently of whether membrane potential changes were induced by voltage clamping, or manipulating the ionic distribution of either Na(+) or K(+). Since FMP behaves as a charged molecule which accumulates in the cytosol, equations based on the Boltzmann distribution were developed determining that the apparent charge of FMP which represents a measure of the voltage sensitivity of the dye, is between -0.62 and -0.72. Finally, we demonstrated that FMP is suitable for use in a variety of neuronal cell types and detects membrane potential changes arising from spontaneous firing of action potentials and through stimulation with a variety of excitatory and inhibitory neurotransmitters.
监测膜电位变化的能力是研究神经元功能的有用工具,但目前可用的选择有限。在这里,我们研究了一种商业上可用的 FLIPR 膜电位(FMP)染料的潜力,该染料最初是为使用平板读数器进行高通量筛选而开发的,可用于使用基于荧光的单细胞成像系统对培养细胞的膜电位进行成像。我们发现,FMP 染料的特性使其非常适合这种成像,原因如下:1)其荧光显示出高信噪比,2)稳健的信号意味着只需要大约 5 毫秒的最小曝光时间,3)由于超极化或去极化条件,可检测到荧光的双向变化,达到平衡的时间常数为 4-8 秒。测量可以独立于膜电位变化是通过电压钳制还是操纵 Na(+)或 K(+)的离子分布来诱导。由于 FMP 作为一种带电荷的分子在细胞质中积累,因此开发了基于玻尔兹曼分布的方程,确定 FMP 的表观电荷代表了染料的电压敏感性的度量,在-0.62 到-0.72 之间。最后,我们证明 FMP 适用于多种神经元细胞类型,并可检测自发动作电位放电和通过各种兴奋性和抑制性神经递质刺激引起的膜电位变化。