Department of Materials Science and Engineering , University of Wisconsin-Madison , Madison , Wisconsin 53706 , United States.
State Key Laboratory of Electronic Thin Films and Integrated Devices , University of Electronic Science and Technology of China , Chengdu , Sichuan 610054 , P.R. China.
ACS Nano. 2019 Nov 26;13(11):12345-12356. doi: 10.1021/acsnano.9b03912. Epub 2019 Sep 10.
Hair loss, a common and distressing symptom, has been plaguing humans. Various pharmacological and nonpharmacological treatments have been widely studied to achieve the desired effect for hair regeneration. As a nonpharmacological physical approach, physiologically appropriate alternating electric field plays a key role in the field of regenerative tissue engineering. Here, a universal motion-activated and wearable electric stimulation device that can effectively promote hair regeneration random body motions was designed. Significantly facilitated hair regeneration results were obtained from Sprague-Dawley rats and nude mice. Higher hair follicle density and longer hair shaft length were observed on Sprague-Dawley rats when the device was employed compared to conventional pharmacological treatments. The device can also improve the secretion of vascular endothelial growth factor and keratinocyte growth factor and thereby alleviate hair keratin disorder, increase the number of hair follicles, and promote hair regeneration on genetically defective nude mice. This work provides an effective hair regeneration strategy in the context of a nonpharmacological self-powered wearable electronic device.
脱发是一种常见且令人困扰的症状,一直困扰着人类。为了达到生发的理想效果,人们广泛研究了各种药理学和非药理学的治疗方法。作为一种非药理学的物理方法,生理适宜的交变电场在再生组织工程领域发挥着关键作用。在这里,设计了一种通用的运动激活和可穿戴的电刺激装置,它可以有效地促进随机身体运动的毛发再生。从 Sprague-Dawley 大鼠和裸鼠中获得了显著促进毛发再生的结果。与传统的药理学治疗相比,当使用该装置时,Sprague-Dawley 大鼠的毛囊密度更高,毛干更长。该装置还可以改善血管内皮生长因子和角质形成细胞生长因子的分泌,从而减轻毛发角蛋白紊乱,增加毛囊数量,促进遗传性缺陷裸鼠的毛发再生。这项工作为非药理学自供电可穿戴电子设备背景下的有效毛发再生策略提供了依据。