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Ultrafast Mid-IR Laser Scalpel: Protein Signals of the Fundamental Limits to Minimally Invasive Surgery

机译:超快中红外激光手术刀:最小侵入性手术的基本极限的蛋白质信号。

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摘要

Lasers have in principle the capability to cut at the level of a single cell, the fundamental limit to minimally invasive procedures and restructuring biological tissues. To date, this limit has not been achieved due to collateral damage on the macroscale that arises from thermal and shock wave induced collateral damage of surrounding tissue. Here, we report on a novel concept using a specifically designed Picosecond IR Laser (PIRL) that selectively energizes water molecules in the tissue to drive ablation or cutting process faster than thermal exchange of energy and shock wave propagation, without plasma formation or ionizing radiation effects. The targeted laser process imparts the least amount of energy in the remaining tissue without any of the deleterious photochemical or photothermal effects that accompanies other laser wavelengths and pulse parameters. Full thickness incisional and excisional wounds were generated in CD1 mice using the Picosecond IR Laser, a conventional surgical laser (DELight Er:YAG) or mechanical surgical tools. Transmission and scanning electron microscopy showed that the PIRL laser produced minimal tissue ablation with less damage of surrounding tissues than wounds formed using the other modalities. The width of scars formed by wounds made by the PIRL laser were half that of the scars produced using either a conventional surgical laser or a scalpel. Aniline blue staining showed higher levels of collagen in the early stage of the wounds produced using the PIRL laser, suggesting that these wounds mature faster. There were more viable cells extracted from skin using the PIRL laser, suggesting less cellular damage. β-catenin and TGF-β signalling, which are activated during the proliferative phase of wound healing, and whose level of activation correlates with the size of wounds was lower in wounds generated by the PIRL system. Wounds created with the PIRL systsem also showed a lower rate of cell proliferation. Direct comparison of wound healing responses to a conventional surgical laser, and standard mechanical instruments shows far less damage and near absence of scar formation by using PIRL laser. This new laser source appears to have achieved the long held promise of lasers in minimally invasive surgery.
机译:原则上,激光具有切割单个细胞水平的能力,这是微创手术和重建生物组织的基本限制。迄今为止,由于在宏观上由热和冲击波引起的周围组织的附带损害引起的宏观损害,尚未达到该极限。在这里,我们报告一个使用专门设计的皮秒红外激光(PIRL)的新颖概念,该激光选择性地激发组织中的水分子,以比能量的热交换和冲击波传播更快地驱动消融或切割过程,而不会形成等离子体或电离辐射。目标激光过程在其余组织中传递的能量最少,而没有伴随其他激光波长和脉冲参数的任何有害的光化学或光热效应。使用皮秒IR激光,常规手术激光(DELight Er:YAG)或机械手术工具在CD1小鼠中产生了全层切开和切除伤口。透射和扫描电子显微镜显示,与使用其他方式形成的伤口相比,PIRL激光产生的组织消融最少,对周围组织的损伤较小。 PIRL激光产生的伤口形成的疤痕宽度是使用常规手术激光或手术刀产生的疤痕宽度的一半。苯胺蓝染色显示在使用PIRL激光产生的伤口的早期阶段,胶原蛋白水平较高,表明这些伤口成熟更快。使用PIRL激光从皮肤中提取的活细胞更多,表明细胞损伤较少。在PIRL系统产生的伤口中,β-catenin和TGF-β信号传导在伤口愈合的增殖阶段被激活,并且其激活水平与伤口大小相关。用PIRL系统制造的伤口也显示出较低的细胞增殖速率。与常规手术激光和标准机械仪器相比,伤口愈合反应的直接比较显示,使用PIRL激光的损伤少得多,几乎没有疤痕形成。这种新的激光源似乎已经在微创外科手术中实现了激光的长久前景。

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