Yingao Ma, Jingyu Xiao, Gina Jinna Chen, Hong Dang, Yaran Zhang, Xiaoqin He, Perry Ping Shum, Qiongyu Guo
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引用次数: 0
摘要
光热治疗作为一种有前途的生物医学应用方法,如癌症消融,引起了人们的极大兴趣,但其有效性往往受到激光穿透不足和实现光热剂有效靶向的挑战的限制。在这里,我们开发了一种经血管介入光热疗法(Ti-PTT),它采用了一个小尺寸的微导管(外径:0.60 mm, 1.8 Fr),配备了超细光纤(直径:100 μm),能够在通过血管内途径进行808 nm激光照射的同时输送光热剂。具体来说,我们采用了两种基于吲哚菁绿(ICG)的光热剂,即ICG溶液作为纯粹的光热剂,ICG-乙硫化油(ICG- eo)乳剂作为不透射线的光热栓塞剂。使用定制的微导管与ICG溶液,可以在大鼠肝脏模型中进行近端和远端栓塞。与ICG溶液相比,ICG- eo乳状液显著提高了ICG保留时间,使光热触发的精确血管阻断能够在具有不利ICG泄漏率的大鼠肾脏模型中诱导大组织体积的局部栓塞。Ti-PTT通过结合临床干预方法,为扩大光热疗法的潜在应用铺平了道路。
Ultrafine fiber-mediated transvascular interventional photothermal therapy using indocyanine green for precision embolization treatment.
Photothermal treatment has attracted immense interest as a promising approach for biomedical applications such as cancer ablation, yet its effectiveness is often limited by insufficient laser penetration and challenges in achieving efficient targeting of photothermal agents. Here we developed a transvascular interventional photothermal therapy (Ti-PTT), which employed a small-sized microcatheter (outer diameter: 0.60 mm, 1.8 Fr) equipped with an ultrafine optical fiber (diameter: 100 μm) capable of simultaneously delivering photothermal agents while performing 808 nm laser irradiation via an endovascular route. Specifically, we employed two types of indocyanine green (ICG)-based photothermal agents, i.e. ICG solution serving as a purely photothermal agent and ICG-ethiodized oil (ICG-EO) emulsion acting as a radiopaque photothermal embolic agent. Using the customized microcatheter with the ICG solution, both proximal and distal embolization were able to be performed in a rat liver model. Compared to the ICG solution, the ICG-EO emulsion dramatically enhanced the ICG retention time, enabling a photothermally triggered precision vascular blockade to induce local embolization of large tissue volumes in a rat kidney model with an unfavorable ICG leakage rate. The Ti-PTT paves the way to broadening the potential applications of photothermal therapy through combination with clinical intervention-based approaches.
期刊介绍:
Biomaterials Science is an international high impact journal exploring the science of biomaterials and their translation towards clinical use. Its scope encompasses new concepts in biomaterials design, studies into the interaction of biomaterials with the body, and the use of materials to answer fundamental biological questions.