Exploration of New Sensitizers for Photodynamic Therapy Targeting Deep Cancer Treatment

Wei Chen
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Abstract

Despite its advantages, photodynamic therapy (PDT) has one major drawback: penetration depth. This limits the use of conventional PDT methods to skin (surface) tumors only, making it ineffective for deep tumors. There are four possible solutions for the light delivery for deep tumor treatment: particles activated by near-infrared (NIR) light, up-conversion of nanoparticles that absorb NIR light and emit visible light for other photosensitizers (PSs), fiber optics and ionizing X-rays. Of these options, the best is X-rays. Near-infrared light can penetrate only 5[Formula: see text]mm in tissue while retaining enough energy to activate the PSs. The use of fiber optics is neither convenient nor efficient as it cannot effectively and evenly activate the photosensitizers. It is also almost impossible for the treatment of metastatic sites or lymph nodes involved with this disease, unless they are located in the region where light delivery is feasible. In contrast with the other methods, X-rays can easily penetrate as deeply as necessary into the patients, and are convenient as they are commonly used in cancer therapy. The use of novel copper–cysteamine (Cu–Cy) nanoparticles is a good solution for overcoming these issues because Cu–Cy nanoparticles can be effectively activated by X-rays to produce singlet oxygen, which makes it very efficient for deep cancer treatment. Here, I will discuss the use of copper–cysteamine nanoparticles to enhance radiation therapy in combination with PDT and targeting therapies.
新型光动力致敏剂用于深部肿瘤治疗的探索
尽管光动力疗法(PDT)有其优点,但它有一个主要缺点:穿透深度。这限制了常规PDT方法仅用于皮肤(表面)肿瘤,使其对深部肿瘤无效。深层肿瘤治疗的光传输有四种可能的解决方案:由近红外(NIR)光激活的粒子,吸收近红外光并为其他光敏剂(ps)发射可见光的纳米粒子的上转换,光纤和电离x射线。在这些选择中,最好的是x光。近红外光在组织中只能穿透5毫米(公式:见文本),同时保留足够的能量来激活PSs。光纤的使用既不方便也不高效,因为它不能有效和均匀地激活光敏剂。这种疾病的转移部位或淋巴结的治疗几乎是不可能的,除非它们位于光传输可行的区域。与其他方法相比,x射线可以很容易地穿透到病人体内所需的深度,并且很方便,因为它们通常用于癌症治疗。新型铜-半胱胺(Cu-Cy)纳米粒子的使用是克服这些问题的一个很好的解决方案,因为Cu-Cy纳米粒子可以被x射线有效地激活,产生单线态氧,这使得它非常有效地用于深部癌症治疗。在这里,我将讨论使用铜-半胱胺纳米颗粒来增强放射治疗与PDT和靶向治疗的结合。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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