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Image-guided smart laser system for precision implantation of cells in cartilage

机译:图像引导智能激光系统,用于软骨细胞的精确植入

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State-of-the-art treatment for joint diseases like osteoarthritis focus on articular cartilage repair/regeneration by stem cell implantation therapy. However, the technique is limited by a lack of precision in the physician's imaging and cell deposition toolkit. We describe a novel combination of high-resolution, rapid scan-rate optical coherence tomography (OCT) alongside a short-pulsed nanosecond thulium (Tm) laser for precise cell seeding in cartilage. The superior beam quality of thulium lasers and wavelength of operation 1940 nm offers high volumetric tissue removal rates and minimizes the residual thermal footprint. OCT imaging enables targeted micro-well placement, precise cell deposition, and feature contrast. A bench-top system is constructed using a 15 W, 1940 nm, nanosecond-pulsed Tm fiber laser (500 μJ pulse energy, 100 ns pulse duration, 30kHz repetition rate) for removing tissue, and a swept source laser (1310 ± 70 nm, 100 kHz sweep rate) for OCT imaging, forming a combined Tm/OCT system - a 'smart laser knife'. OCT assists the smart laser knife user in characterizing cartilage to inform micro-well placement. The Tm laser creates micro-wells (2.35 mm diameter length, 1.5 mm width, 300 μm deep) and micro-incisions (1 mm wide, 200 μm deep) while OCT image-guidance assists and demonstrates this precision cutting and cell deposition with real-time feedback. To test micro-well creation and cell deposition protocol, gelatin phantoms are constructed mimicking cartilage optical properties and physiological structure. Cell viability is then assessed to illustrate the efficacy of the hydrogel deposition. Automated OCT feedback is demonstrated for cutting procedures to avoid important surface/subsurface structures. This bench-top smart laser knife system described here offers a new image-guided approach to precise stem cell seeding that can enhance the efficacy of articular cartilage repair.
机译:诸如骨关节炎之类的关节疾病的最新治疗方法集中于通过干细胞植入疗法进行关节软骨的修复/再生。但是,该技术受到医师成像和细胞沉积工具包缺乏精确性的限制。我们描述了高分辨率,快速扫描速率光学相干断层扫描(OCT)与短脉冲纳秒th(Tm)激光的新型组合,用于在软骨中精确植入细胞。 ul激光器的优异光束质量和1940 nm的工作波长可提供较高的组织清除率,并使残留的热足迹最小化。 OCT成像可实现有针对性的微孔放置,精确的细胞沉积和功能对比。使用15 W,1940 nm,纳秒脉冲Tm光纤激光器(500μJ脉冲能量,100 ns脉冲持续时间,30kHz重复频率)和组织扫描源激光器(1310±70 nm)构建台式系统,100 kHz扫描速率)用于OCT成像,从而形成了组合的Tm / OCT系统-“智能激光刀”。 OCT可帮助智能激光刀用户确定软骨的特征,以告知微孔放置。 Tm激光器可创建微孔(直径为2.35毫米,宽为1.5毫米,深为300μm)和微切口(宽为1毫米,深为200μm),而OCT图像引导则可以辅助并演示这种精确切割和细胞沉积的真实过程。及时反馈。为了测试微孔的产生和细胞沉积方案,构建了明胶体模来模仿软骨的光学特性和生理结构。然后评估细胞生存力以说明水凝胶沉积的功效。自动化的OCT反馈可用于切削程序,避免了重要的表面/亚表面结构。这里介绍的这种台式智能激光刀系统为精确的干细胞播种提供了一种新的图像引导方法,可以增强关节软骨修复的功效。

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