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激光诱导光学神经引导中的加热分析。

Analysis of laser-induced heating in optical neuronal guidance.

机构信息

Niels Bohr Institute, University of Copenhagen, Blegdamsvej 17, DK-2100 Copenhagen Ø, Denmark.

出版信息

J Neurosci Methods. 2012 Jul 30;209(1):168-77. doi: 10.1016/j.jneumeth.2012.02.006. Epub 2012 Feb 24.

Abstract

Recently, it has been shown that it is possible to control the growth direction of neuronal growth cones by stimulation with weak laser light; an effect dubbed optical neuronal guidance. The effect exists for a broad range of laser wavelengths, spot sizes, spot intensities, optical intensity profiles and beam modulations, but it is unknown which biophysical mechanisms govern it. Based on thermodynamic modeling and simulation using published experimental parameters as input, we argue that the guidance is linked to heating. Until now, temperature effects due to laser-induced heating of the guided neuron have been neglected in the optical neuronal guidance literature. The results of our finite-element-method simulations show the relevance of the temperature field in optical guidance experiments and are consistent with published experimental results and modeling in the field of optical traps. Furthermore, we propose two experiments designed to test this hypotheses experimentally. For one of these experiments, we have designed a microfluidic platform, to be made using standard microfabrication techniques, for incubation of neurons in temperature gradients on micrometer lengthscales.

摘要

最近已经证实,通过弱激光刺激可以控制神经元生长锥的生长方向;这种效应被称为光神经导向。该效应适用于广泛的激光波长、光斑大小、光斑强度、光学强度分布和光束调制,但尚不清楚其背后的生物物理机制。基于使用已发表的实验参数作为输入的热力学建模和模拟,我们认为该导向与加热有关。到目前为止,在光神经导向文献中,激光诱导的被引导神经元的加热引起的温度效应被忽略了。我们的有限元方法模拟结果表明,温度场在光导向实验中的相关性,并与光阱领域的已发表实验结果和建模一致。此外,我们提出了两个旨在通过实验验证该假说的实验。对于其中一个实验,我们设计了一个微流控平台,该平台将使用标准微制造技术制造,用于在微米长度尺度上的温度梯度中孵育神经元。

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