van Vlimmeren Marijke A A, Raafs Bianca, Westgate Gillian, Beijens Linda G M, Uzunbajakava Natallia E
Philips Research, High Tech Campus 11, 5656 AE, Eindhoven, The Netherlands.
Interchemie werken "De Adelaar" BV, Laan van Diepenvoorde 25, 5582 LA, Waalre, The Netherlands.
Lasers Surg Med. 2019 Oct;51(8):735-741. doi: 10.1002/lsm.23085. Epub 2019 Mar 19.
Photoepilation is a commonly used technology in home-use devices (HUDs) and in professional systems to remove unwanted body hair using pulses of laser or intense pulsed light (IPL). Albeit HUDs and professional systems operate at different fluences and treatment regimes, both demonstrate high hair reduction. The underlying mechanisms, however, remain unknown partly due to high divergence of the existing literature data. The objective of this study was to develop an ex vivo photoepilation model with a set of criteria evaluating response to light pulses; and to investigate dose-response behavior of hair follicles (HFs) subjected to a range of fluences.
After ex vivo treatment (single pulse, 810 nm, 1.7-26.4 J/cm , 4-64 ms pulse) human anagen HFs were isolated and maintained in culture for 7-10 days. Response to light was evaluated based on gross-morphology and histological examination (H&E and TUNEL stainings).
HFs treated ex vivo demonstrated a dose-dependent response to light with five distinct classes defined by macroscopic and microscopic criteria. Fluences below 13.2 J/cm provoked catagen-like transition, higher fluences resulted in coagulation in HF compartments.
Observed changes in the HF organ culture model were reflected by clinical efficacy. The developed photoepilation model provides an easy and fast method to predict clinical efficacy and permanency of light-based hair removal devices. Lasers Surg. Med. © 2019 Wiley Periodicals, Inc.
光脱毛是家用设备(HUD)和专业系统中常用的技术,用于通过激光脉冲或强脉冲光(IPL)去除多余的身体毛发。尽管HUD和专业系统在不同的能量密度和治疗方案下运行,但两者都显示出高脱毛效果。然而,其潜在机制部分仍不清楚,这是由于现有文献数据存在高度差异。本研究的目的是建立一种体外光脱毛模型,并制定一套评估对光脉冲反应的标准;研究毛囊(HF)在一系列能量密度下的剂量反应行为。
体外治疗(单脉冲,810nm,1.7 - 26.4J/cm²,4 - 64ms脉冲)后,分离处于生长期的人毛囊并在培养中维持7 - 10天。基于大体形态学和组织学检查(苏木精-伊红染色和TUNEL染色)评估对光的反应。
体外处理的毛囊对光表现出剂量依赖性反应,根据宏观和微观标准定义了五个不同类别。能量密度低于13.2J/cm²引发类似退行期的转变,更高的能量密度导致毛囊各部分发生凝固。
在毛囊器官培养模型中观察到的变化反映在临床疗效上。所建立的光脱毛模型提供了一种简单快速的方法来预测基于光的脱毛设备的临床疗效和永久性。激光外科与医学。©2019威利期刊公司。