Wavefront-Engineering Microscopy Group, Neurophysiology and New Microscopies Laboratory, Centre National de Recherche Scientifique, Unité Mixte de Recherche 8154, Institut National de Santé et de Recherche Médicale U603, Paris Descartes University, Paris, France.
Nat Methods. 2010 Oct;7(10):848-54. doi: 10.1038/nmeth.1505. Epub 2010 Sep 19.
Light-gated ion channels and pumps have made it possible to probe intact neural circuits by manipulating the activity of groups of genetically similar neurons. What is needed now is a method for precisely aiming the stimulating light at single neuronal processes, neurons or groups of neurons. We developed a method that combines generalized phase contrast with temporal focusing (TF-GPC) to shape two-photon excitation for this purpose. The illumination patterns are generated automatically from fluorescence images of neurons and shaped to cover the cell body or dendrites, or distributed groups of cells. The TF-GPC two-photon excitation patterns generated large photocurrents in Channelrhodopsin-2-expressing cultured cells and neurons and in mouse acute cortical slices. The amplitudes of the photocurrents can be precisely modulated by controlling the size and shape of the excitation volume and, thereby, be used to trigger single action potentials or trains of action potentials.
光控离子通道和泵已经使得通过操纵遗传相似神经元群体的活性来探测完整的神经回路成为可能。现在需要的是一种将刺激光精确瞄准单个神经元过程、神经元或神经元群体的方法。我们开发了一种方法,将广义相衬与时间聚焦(TF-GPC)相结合,为此目的来形成双光子激发。照明模式是从神经元的荧光图像自动生成的,并被成形以覆盖细胞体或树突,或分布的细胞群。TF-GPC 双光子激发模式在表达 Channelrhodopsin-2 的培养细胞和神经元以及在小鼠急性皮质切片中产生了大的光电流。通过控制激发体积的大小和形状,可以精确地调节光电流的幅度,从而用于触发单个动作电位或动作电位序列。