The University of Texas at Austin, Department of Mechanical Engineering, Austin, Texas 78712, USA.
J Biomed Opt. 2012 Mar;17(3):038002. doi: 10.1117/1.JBO.17.3.038002.
Vocal fold scarring is a predominant cause of voice disorders yet lacks a reliable treatment method. The injection of soft biomaterials to improve mechanical compliance of the vocal folds has emerged as a promising treatment. Here, we study the use of precise femtosecond laser microsurgery to ablate subsurface voids, with a goal of eventually creating a plane in dense subepithelial scar tissue into which biomaterials can be injected for their improved localization. Specifically, we demonstrate the ablation of small subepithelial voids in porcine vocal fold tissue up to 120 [micro sign]m below the surface such that larger voids in the active area of vocal fold mucosa (~3×10 mm(2)) can eventually be ablated in about 3 min. We use sub-μJ, 776-nm pulses from a compact femtosecond fiber laser system operating at a 500-kHz repetition rate. The use of relatively high repetition rates, with a small number of overlapping pulses, is critical to achieving ablation in a very short time while still avoiding significant heat deposition. Additionally, we use the same laser for nonlinear optical imaging to provide visual feedback of tissue structure and to confirm successful ablation. The ablation parameters, including pulse duration, pulse energy, spot size, and scanning speed, are comparable to the specifications in our recently developed miniaturized femtosecond laser surgery probes, illustrating the feasibility of developing an ultrafast laser surgical instrument.
声带瘢痕是导致嗓音障碍的主要原因,但目前缺乏可靠的治疗方法。注射柔软的生物材料来提高声带的机械顺应性已成为一种很有前途的治疗方法。在这里,我们研究了使用精确的飞秒激光微手术来烧蚀亚表面空隙,最终的目标是在致密的黏膜下瘢痕组织中创建一个平面,以便将生物材料注入其中以改善其定位。具体来说,我们证明了可以在猪声带组织中烧蚀深度达 120[micro sign]m 的小亚表面空隙,从而可以在大约 3 分钟内烧蚀大约 3×10mm(2)的声带黏膜活动区域中的较大空隙。我们使用来自紧凑型飞秒光纤激光系统的纳秒、776nm 脉冲,该系统以 500kHz 的重复率运行。使用相对较高的重复率和少量重叠脉冲对于在非常短的时间内实现烧蚀而又避免显著的热沉积至关重要。此外,我们还使用相同的激光进行非线性光学成像,以提供组织结构的视觉反馈并确认成功的烧蚀。烧蚀参数,包括脉冲持续时间、脉冲能量、光斑尺寸和扫描速度,与我们最近开发的小型化飞秒激光手术探头的规格相当,这表明开发超快激光手术仪器是可行的。