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Increased epidermal laser fluence through simultaneous ultrasonic microporation

机译:通过同时进行超声微穿孔提高表皮激光通量

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Lasers have demonstrated widespread applicability in clinical dermatology as minimally invasive instruments that achieve photogenerated responses within tissue. However, before reaching its target, the incident light must first transmit through the surface layer of tissue, which is interspersed with chromophores (e.g. melanin) that preferentially absorb the light and may also generate negative tissue responses. These optical absorbers decrease the efficacy of the procedures. In order to ensure that the target receives a clinically relevant dose, most procedures simply increase the incident energy; however, this tends to exacerbate the negative complications of melanin absorption. Here, we present an alternative solution aimed at increasing epidermal energy fluence while mitigating excess absorption by unintended targets. Our technique involves the combination of a waveguide-based contact transmission modality with simultaneous high-frequency ultrasonic pulsation, which alters the optical properties of the tissue through the agglomeration of dissolved gasses into micro-bubbles within the tissue. Doing so effectively creates optically transparent pathways for the light to transmit unobstructed through the tissue, resulting in an increase in forward scattering and a decrease in absorption. To demonstrate this, Q-switched nanosecond-pulsed laser light at 532nm was delivered into pig skin samples using custom glass waveguides clad in titanium and silver. Light transmission through the tissue was measured with a photodiode and integrating sphere for tissue with and without continuous ultrasonic pulsation at 510 kHz. The combination of these techniques has the potential to improve the efficiency of laser procedures while mitigating negative tissue effects caused by undesirable absorption.
机译:激光已被证明在临床皮肤病学中具有广泛的适用性,可以作为实现组织内光生反应的微创仪器。然而,在到达目标之前,入射光必须首先透射过组织的表层,该表层散布着发色团(例如黑色素),该发色团优先吸收光,并且还可能产生负面的组织反应。这些光学吸收剂降低了程序的效率。为了确保靶标收到临床上相关的剂量,大多数程序只是增加了入射能量。然而,这倾向于加剧黑色素吸收的负面并发症。在这里,我们提出了一种替代解决方案,旨在增加表皮能量通量,同时减轻意外目标的过度吸收。我们的技术涉及将基于波导的接触传输方式与同时进行的高频超声脉动相结合,从而通过将溶解的气体团聚成组织内的微气泡来改变组织的光学特性。这样做有效地为光创建了光学透明的通道,使光可以无阻碍地通过组织透射,从而导致前向散射增加,吸收减少。为了证明这一点,使用包覆在钛和银上的定制玻璃波导将532nm的Q开关纳秒脉冲激光传送到猪皮样品中。通过光电二极管和积分球测量组织的光透射率,该积分球用于具有和不具有510 kHz连续超声脉冲的组织。这些技术的组合有可能提高激光手术的效率,同时减轻由不良吸收引起的负面组织效应。

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