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Optically monitoring voltage in neurons by photo-induced electron transfer through molecular wires

机译:通过分子导线的光感应电子转移光学监测神经元中的电压

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摘要

Fluorescence imaging is an attractive method for monitoring neuronal activity. A key challenge for optically monitoring voltage is development of sensors that can give large and fast responses to changes in transmembrane potential. We now present fluorescent sensors that detect voltage changes in neurons by modulation of photo-induced electron transfer (PeT) from an electron donor through a synthetic molecular wire to a fluorophore. These dyes give bigger responses to voltage than electrochromic dyes, yet have much faster kinetics and much less added capacitance than existing sensors based on hydrophobic anions or voltage-sensitive ion channels. These features enable single-trial detection of synaptic and action potentials in cultured hippocampal neurons and intact leech ganglia. Voltage-dependent PeT should be amenable to much further optimization, but the existing probes are already valuable indicators of neuronal activity.
机译:荧光成像是监测神经元活动的一种有吸引力的方法。光学监视电压的关键挑战是传感器的开发,该传感器可以对跨膜电位的变化做出大而快速的响应。现在,我们介​​绍了荧光传感器,该传感器通过调制从电子供体通过合成分子线到荧光团的光诱导电子转移(PeT)来检测神经元中的电压变化。这些染料比电致变色染料对电压的响应更大,但与现有的基于疏水性阴离子或电压敏感离子通道的传感器相比,其动力学更快,附加电容也更少。这些功能使得可以在培养的海马神经元和完整的水ech神经节中单次检测突触和动作电位。电压依赖性PeT应该适合进一步优化,但是现有的探针已经是神经元活动的重要指标。

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