Masters Barry R, So Peter T C, Buehler Christof, Barry Nicholas, Sutin Jason D, Mantulin William W, Gratton Enrico
University of Illinois at Urbana-Champaign, Laboratory for Fluorescence Dynamics, Department of Physics, Urbana, Illinois 61801, USA.
J Biomed Opt. 2004 Nov-Dec;9(6):1265-70. doi: 10.1117/1.1806135.
Two-photon excitation fluorescence microscopy allows in vivo high-resolution imaging of human skin structure and biochemistry with a penetration depth over 100 microm. The major damage mechanism during two-photon skin imaging is associated with the formation of cavitation at the epidermal-dermal junction, which results in thermal mechanical damage of the tissue. In this report, we verify that this damage mechanism is of thermal origin and is associated with one-photon absorption of infrared excitation light by melanin granules present in the epidermal-dermal junction. The thermal mechanical damage threshold for selected Caucasian skin specimens from a skin bank as a function of laser pulse energy and repetition rate has been determined. The experimentally established thermal mechanical damage threshold is consistent with a simple heat diffusion model for skin under femtosecond pulse laser illumination. Minimizing thermal mechanical damage is vital for the potential use of two-photon imaging in noninvasive optical biopsy of human skin in vivo. We describe a technique to mitigate specimen thermal mechanical damage based on the use of a laser pulse picker that reduces the laser repetition rate by selecting a fraction of pulses from a laser pulse train. Since the laser pulse picker decreases laser average power while maintaining laser pulse peak power, thermal mechanical damage can be minimized while two-photon fluorescence excitation efficiency is maximized.
双光子激发荧光显微镜能够对人体皮肤结构和生物化学进行体内高分辨率成像,其穿透深度超过100微米。双光子皮肤成像过程中的主要损伤机制与表皮-真皮交界处空化的形成有关,这会导致组织的热机械损伤。在本报告中,我们证实这种损伤机制源于热,并且与表皮-真皮交界处存在的黑色素颗粒对红外激发光的单光子吸收有关。已确定来自皮肤库的选定白种人皮肤样本的热机械损伤阈值作为激光脉冲能量和重复率的函数。实验确定的热机械损伤阈值与飞秒脉冲激光照射下皮肤的简单热扩散模型一致。将热机械损伤降至最低对于双光子成像在人体皮肤体内无创光学活检中的潜在应用至关重要。我们描述了一种基于使用激光脉冲选择器来减轻样本热机械损伤的技术,该选择器通过从激光脉冲序列中选择一部分脉冲来降低激光重复率。由于激光脉冲选择器在保持激光脉冲峰值功率的同时降低了激光平均功率,因此可以在使双光子荧光激发效率最大化的同时将热机械损伤降至最低。