Paviolo Chiara, Thompson Alexander C, Yong Jiawey, Brown William G A, Stoddart Paul R
J Neural Eng. 2014 Dec;11(6):065002. doi: 10.1088/1741-2560/11/6/065002.
Recent research has demonstrated that nerves can be stimulated by transient heating associated with the absorption of infrared light by water in the tissue. There is a great deal of interest in using this technique in neural prostheses, due to the potential for increased localization of the stimulus and minimization of contact with the tissue. However, thermal modelling suggests that the full benefits of increased localization may be reduced by cumulative heating effects when multiple stimulus sites and/or high repetition rates are used.
Here we review recent in vitro and in vivo results suggesting that the transient heating associated with plasmon absorption in gold nanorods can also be used to stimulate nerves.
Patch clamp experiments on cultured spiral ganglion neurons exhibited action potentials when exposed to 780 nm light at the plasmon absorption peak, while the amplitude of compound action potentials in the rat sciatic nerve were increased by laser irradiation of gold nanorods in the vicinity of the plasma membrane. Similarly, calcium imaging studies of NG108-15 neuronal cells incubated with Au nanorods revealed an increased level of intracellular calcium activity synchronized with laser exposure.
Given that the plasmon absorption peak of gold nanorods can be matched with the transparency window of biological tissues, these results demonstrate that nanorod absorbers hold great promise to enhance the process of infrared neural stimulation for future applications in neural prostheses and fundamental studies in neuroscience.
最近的研究表明,与组织中水分吸收红外光相关的短暂加热可刺激神经。由于这种技术有可能提高刺激的定位精度并减少与组织的接触,因此人们对将其用于神经假体非常感兴趣。然而,热模型表明,当使用多个刺激部位和/或高重复率时,累积加热效应可能会降低增加定位的全部益处。
在这里,我们回顾了最近的体外和体内研究结果,这些结果表明与金纳米棒中的等离子体吸收相关的短暂加热也可用于刺激神经。
对培养的螺旋神经节神经元进行的膜片钳实验显示,当暴露于等离子体吸收峰处的780nm光时会产生动作电位,而通过对大鼠坐骨神经质膜附近的金纳米棒进行激光照射,复合动作电位的幅度会增加。同样,对用金纳米棒孵育的NG108-15神经细胞进行的钙成像研究表明,细胞内钙活性水平的增加与激光照射同步。
鉴于金纳米棒的等离子体吸收峰可与生物组织的透明窗口相匹配,这些结果表明纳米棒吸收体在增强红外神经刺激过程方面具有巨大潜力,可用于未来的神经假体应用和神经科学基础研究。