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确定在红外神经抑制过程中,神经热阻断的块长度在降低温度方面的作用。

Identifying the Role of Block Length in Neural Heat Block to Reduce Temperatures During Infrared Neural Inhibition.

机构信息

Department of Biomedical Engineering, Vanderbilt University, 5824 Stevenson Center, Nashville, Tennessee, 37232.

Biophotonics Center, Vanderbilt University, 410 24th Ave S, Nashville, Tennessee, 37232.

出版信息

Lasers Surg Med. 2020 Mar;52(3):259-275. doi: 10.1002/lsm.23139. Epub 2019 Jul 25.

DOI:10.1002/lsm.23139
PMID:31347188
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6981060/
Abstract

BACKGROUND AND OBJECTIVES

The objective of this study is to assess the hypothesis that the length of axon heated, defined here as block length (BL), affects the temperature required for thermal inhibition of action potential propagation applied using laser heating. The presence of such a phenomenon has implications for how this technique, called infrared neural inhibition (INI), may be applied in a clinically safe manner since it suggests that temperatures required for therapy may be reduced through the proper spatial application of light. Here, we validate the presence of this phenomenon by assessing how the peak temperatures during INI are reduced when two different BLs are applied using irradiation from either one or two adjacent optical fibers.

STUDY DESIGN/MATERIALS AND METHODS: Assessment of the role of BL was carried out over two phases. First, a computational proof of concept was performed in the neural conduction simulation environment, NEURON, simulating the response of action potentials to increased temperatures applied at different full-width at half-maxima (FWHM) along axons. Second, ex vivo validation of these predictions was performed by measuring the radiant exposure, peak temperature rise, and FWHM of heat distributions associated with INI from one or two adjacent optical fibers. Electrophysiological assessment of radiant exposures at inhibition threshold were carried out in ex vivo Aplysia californica (sea slug) pleural abdominal nerves ( n = 6), an invertebrate with unmyelinated axons. Measurement of the maximum temperature rise required for induced heat block was performed in a water bath using a fine wire thermocouple. Finally, magnetic resonance thermometry (MRT) was performed on a nerve immersed in saline to assess the elevated temperature distribution at these radiant exposures.

RESULTS

Computational modeling in NEURON provided a theoretical proof of concept that the BL is an important factor contributing to the peak temperature required during neural heat block, predicting a 11.7% reduction in temperature rise when the FWHM along an axon is increased by 42.9%. Experimental validation showed that, when using two adjacent fibers instead of one, a 38.5 ± 2.2% (mean ± standard error of the mean) reduction in radiant exposure per pulse per fiber threshold at the fiber output (P = 7.3E-6) is measured, resulting in a reduction in peak temperature rise under each fiber of 23.5  ± 2.1% ( P = 9.3E-5) and 15.0 ± 2.4% ( P = 1.4E-3) and an increase in the FWHM of heating by 37.7 ± 6.4% ( P = 1E-3), 68.4 ± 5.2% ( P = 2.4E-5), and 51.9  ± 9.9% ( P = 1.7E-3) in three MRT slices.

CONCLUSIONS

This study provides the first experimental evidence for a phenomenon during the heat block in which the temperature for inhibition is dependent on the BL. While more work is needed to further reduce the temperature during INI, the results highlight that spatial application of the temperature rise during INI must be considered. Optimized implementation of INI may leverage this cellular response to provide optical modulation of neural signals with lower temperatures over greater time periods, which may increase the utility of the technique for laboratory and clinical use. Lasers Surg. Med. © 2019 Wiley Periodicals, Inc.

摘要

背景与目的

本研究旨在评估这样一种假设,即加热的轴突长度(定义为阻断长度(BL))会影响激光加热时应用的动作电位传播热抑制所需的温度。这种现象的存在对该技术(称为红外神经抑制(INI))如何以临床安全的方式应用具有重要意义,因为它表明治疗所需的温度可以通过光的适当空间应用来降低。在这里,我们通过评估当使用来自一个或两个相邻光纤的照射施加两个不同的 BL 时,INI 期间的峰值温度如何降低,来验证这种现象的存在。

研究设计/材料和方法:对 BL 的作用进行了两个阶段的评估。首先,在神经传导模拟环境 NEURON 中进行了计算概念验证,模拟了在不同全宽半最大值(FWHM)下沿轴突施加增加温度时动作电位的响应。其次,通过测量与来自一个或两个相邻光纤的 INI 相关的辐射暴露、峰值温升和 FWHM,在离体海兔(无脊椎动物)胸膜腹部神经(n=6)中对这些预测进行了离体验证。在离体加利福尼亚海兔(无脊椎动物)胸膜腹部神经中进行了抑制阈值的辐射暴露的电生理评估,这些神经没有髓鞘。使用细金属丝热电偶在水浴中测量产生热阻断所需的最大温升。最后,在盐水浸泡的神经上进行磁共振测温(MRT),以评估这些辐射暴露下的升高温度分布。

结果

在 NEURON 中的计算模型提供了一个理论概念验证,证明 BL 是在神经热阻断过程中需要的峰值温度的重要因素,预测当轴突上的 FWHM 增加 42.9%时,温升降低 11.7%。实验验证表明,当使用两个相邻的光纤而不是一个光纤时,每个光纤的脉冲辐射暴露阈值降低 38.5±2.2%(均值±标准误差)(P=7.3E-6),导致每个光纤的峰值温升降低 23.5±2.1%(P=9.3E-5)和 15.0±2.4%(P=1.4E-3),加热的 FWHM 增加 37.7±6.4%(P=1E-3)、68.4±5.2%(P=2.4E-5)和 51.9±9.9%(P=1.7E-3),在三个 MRT 切片中。

结论

本研究首次提供了在热阻断过程中存在一种现象的实验证据,即在抑制时温度取决于 BL。虽然还需要进一步降低 INI 期间的温度,但结果强调了必须考虑 INI 期间温升的空间应用。INI 的优化实施可以利用这种细胞反应,以更低的温度在更长的时间内提供神经信号的光学调制,这可能会增加该技术在实验室和临床应用中的效用。激光外科学杂志。© 2019 威利期刊公司

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