Singh Sundeep, Escobar Andres, Wang Zexi, Zhang Zhiyi, Ramful Chundra, Xu Chang-Qing
Faculty of Sustainable Design Engineering, University of Prince Edward Island, Charlottetown, PE C1A 4P3, Canada.
Department of Biomedical Engineering, McMaster University, Hamilton, ON L8S 4L8, Canada.
Bioengineering (Basel). 2023 Jul 15;10(7):837. doi: 10.3390/bioengineering10070837.
Acupuncture is one of the most extensively used complementary and alternative medicine therapies worldwide. In this study, we explore the use of near-infrared light-emitting diodes (LEDs) to provide acupuncture-like physical stimulus to the skin tissue, but in a completely non-invasive way. A computational modeling framework has been developed to investigate the light-tissue interaction within a three-dimensional multi-layer model of skin tissue. Finite element-based analysis has been conducted, to obtain the spatiotemporal temperature distribution within the skin tissue, by solving Pennes' bioheat transfer equation, coupled with the Beer-Lambert law. The irradiation profile of the LED has been experimentally characterized and imposed in the numerical model. The experimental validation of the developed model has been conducted through comparing the numerical model predictions with those obtained experimentally on the agar phantom. The effects of the LED power, treatment duration, LED distance from the skin surface, and usage of multiple LEDs on the temperature distribution attained within the skin tissue have been systematically investigated, highlighting the safe operating power of the selected LEDs. The presented information about the spatiotemporal temperature distribution, and critical factors affecting it, would assist in better optimizing the desired thermal dosage, thereby enabling a safe and effective LED-based photothermal therapy.
针灸是全球使用最广泛的补充和替代医学疗法之一。在本研究中,我们探索使用近红外发光二极管(LED)以完全非侵入性的方式为皮肤组织提供类似针灸的物理刺激。已开发出一个计算建模框架,以研究皮肤组织三维多层模型内的光与组织相互作用。通过求解彭尼斯生物热传递方程并结合比尔-朗伯定律,进行了基于有限元的分析,以获得皮肤组织内的时空温度分布。LED的辐照分布已通过实验表征并应用于数值模型中。通过将数值模型预测结果与在琼脂模型上实验获得的结果进行比较,对所开发模型进行了实验验证。系统地研究了LED功率、治疗持续时间、LED与皮肤表面的距离以及多个LED的使用对皮肤组织内达到的温度分布的影响,突出了所选LED的安全工作功率。所呈现的关于时空温度分布及其影响关键因素的信息,将有助于更好地优化所需的热剂量,从而实现基于LED的安全有效的光热疗法。