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Improving Focal Photostimulation of Cortical Neurons with Pre-derived Wavefront Correction

机译:通过预先派生的波前校正来改善皮质神经元的局部光刺激

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摘要

Recent progress in neuroscience to image and investigate brain function has been made possible by impressive developments in optogenetic and opto-molecular tools. Such research requires advances in optical techniques for the delivery of light through brain tissue with high spatial resolution. The tissue causes distortions to the wavefront of the incoming light which broadens the focus and consequently reduces the intensity and degrades the resolution. Such effects are detrimental in techniques requiring focal stimulation. Adaptive wavefront correction has been demonstrated to compensate for these distortions. However, iterative derivation of the corrective wavefront introduces time constraints that limit its applicability to probe living cells. Here, we demonstrate that we can pre-determine and generalize a small set of Zernike modes to correct for aberrations of the light propagating through specific brain regions. A priori identification of a corrective wavefront is a direct and fast technique that improves the quality of the focus without the need for iterative adaptive wavefront correction. We verify our technique by measuring the efficiency of two-photon photolysis of caged neurotransmitters along the dendrites of a whole-cell patched neuron. Our results show that encoding the selected Zernike modes on the excitation light can improve light propagation through brain slices of rats as observed by the neuron's evoked excitatory post-synaptic potential in response to localized focal uncaging at the spines of the neuron's dendrites.
机译:通过光遗传学和光分子工具的惊人发展,使神经科学成像和研究脑功能的最新进展成为可能。此类研究需要光学技术方面的进步,以通过大脑组织以高空间分辨率传输光。组织会导致入射光的波前畸变,从而使聚焦变宽,从而降低强度并降低分辨率。这样的效果在需要聚焦刺激的技术中是有害的。自适应波前校正已被证明可以补偿这些失真。但是,校正波前的迭代推导会引入时间限制,从而限制了其对探测活细胞的适用性。在这里,我们证明了我们可以预先确定并推广一小组Zernike模式,以校正通过特定大脑区域传播的光的像差。校正波前的先验识别是一种直接且快速的技术,无需迭代的自适应波前校正即可提高聚焦质量。我们通过测量沿全细胞修补神经元树突的笼状神经递质的两光子光解效率来验证我们的技术。我们的结果表明,对神经元树突棘的局部局灶解开反应,神经元诱发的突触后神经元的潜在兴奋作用可以在激发光上编码选定的Zernike模式,从而改善光在大鼠脑片中的传播。

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