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High-efficiency channelrhodopsins for fast neuronal stimulation at low light levels

机译:高效通道视紫红质在弱光下可快速刺激神经元

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Channelrhodopsin-2 (ChR2) has become an indispensable tool in neuroscience, allowing precise induction of action potentials with short light pulses. A limiting factor for many optophysiological experiments is the relatively small photocurrent induced by ChR2. We screened a large number of ChR2 point mutants and discovered a dramatic increase in photocurrent amplitude after threonine-to-cysteine substitution at position 159. When we tested the T159C mutant in hippocampal pyramidal neurons, action potentials could be induced at very low light intensities, where currently available channelrhodopsins were unable to drive spiking. Biophysical characterization revealed that the kinetics of most ChR2 variants slows down considerably at depolarized membrane potentials. We show that the recently published E123T substitution abolishes this voltage sensitivity and speeds up channel kinetics. When we combined T159C with E123T, the resulting double mutant delivered fast photocurrents with large amplitudes and increased the precision of single action potential induction over a broad range of frequencies, suggesting it may become the standard for light-controlled activation of neurons.
机译:Channelrhodopsin-2(ChR2)已成为神经科学中不可或缺的工具,可以在短光脉冲的情况下精确诱导动作电位。许多光生理实验的限制因素是ChR2诱导的相对较小的光电流。我们筛选了许多ChR2点突变体,发现在位置159上的苏氨酸到半胱氨酸取代后,光电流幅度显着增加。当我们在海马锥体神经元中测试T159C突变体时,可以在非常低的光强度下诱导动作电位,当前可用的通道视紫红质无法驱动峰值的地方。生物物理特征表明,大多数ChR2变体的动力学在去极化膜电位下均会大大降低。我们显示,最近发布的E123T替代消除了这种电压敏感性,并加快了通道动力学。当我们将T159C与E123T结合使用时,所得的双突变体可在较大的频率范围内传递较大幅度的快速光电流,并提高了单作用电位诱导的精度,这表明它可能成为神经元光控激活的标准。

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