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Characterization of fiber-optic light delivery and light-induced temperature changes in a rodent brain for precise optogenetic neuromodulation

机译:表征啮齿动物大脑中光纤的光传输和光诱导的温度变化以进行精确的光遗传神经调节

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摘要

Understanding light intensity and temperature increase is of considerable importance in designing or performing in vivo optogenetic experiments. Our study describes the optimal light power at target depth in the rodent brain that would maximize activation of light-gated ion channels while minimizing temperature increase. Monte Carlo (MC) simulations of light delivery were used to provide a guideline for suitable light power at a target depth. In addition, MC simulations with the Pennes bio-heat model using data obtained from measurements with a temperature-measuring cannula having 12.3 mV/°C of thermoelectric sensitivity enabled us to predict tissue heating of 0.116 °C/mW on average at target depth of 563 μm and specifically, a maximum mean plateau temperature increase of 0.25 °C/mW at 100 μm depth for 473 nm light. Our study will help to improve the design and performance of optogenetic experiments while avoiding potential over- and under-illumination.
机译:在设计或进行体内光遗传学实验中,了解光强度和温度升高非常重要。我们的研究描述了在啮齿动物大脑目标深度的最佳光功率,该功率将最大化光控门离子通道的激活,同时将温度升高降至最低。蒙特卡罗(MC)的光传输模拟用于为目标深度的合适光功率提供指导。此外,利用Pennes生物热模型进行的MC模拟,使用通过对具有12.3 mV /°C热电敏感性的测温套管进行测量而获得的数据,可以预测在目标深度为0.116°C / mW的组织平均加热563μm,特别是对于473 nm的光,在100μm深度处的最大平均平台温度升高0.25°C / mW。我们的研究将有助于改善光遗传学实验的设计和性能,同时避免潜在的过度照明和照明不足。

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