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在光动力疗法中使用 X 射线:概述。

Using X-rays in photodynamic therapy: an overview.

机构信息

Laboratoire Réactions et Génie des Procédés (LRGP), UMR 7274, Université de Lorraine, CNRS, Nancy, France.

Laboratoire de Chimie Physique Macromoléculaire (LCPM), UMR 7375, Université de Lorraine, CNRS, Nancy, France.

出版信息

Photochem Photobiol Sci. 2018 Nov 1;17(11):1612-1650. doi: 10.1039/c8pp00112j. Epub 2018 Jun 25.

DOI:10.1039/c8pp00112j
PMID:29938265
Abstract

Photodynamic therapy is a therapeutic option to treat cancer and other diseases. PDT is used every day in dermatology, and recent developments in the treatment of glioblastoma, mesothelioma or prostate have demonstrated the efficacy of this modality. In order to improve the efficacy of PDT, different strategies are under development, such as the use of targeted PS or nanoparticles to improve selectivity and the design of light devices to better monitor the light dose. Due to the low penetration of light into tissue, another way to improve the efficacy of PDT to treat deep tumors is the use of upconversion NPs or bi-photon absorption compounds. These compounds can be excited in the red part of the spectrum. A relatively new approach, which we will call PDTX, is the use of X-rays instead of UV-visible light for deeper penetration into tissue. The principle of this technique will be described, and the state-of-art literature concerning this modality will be discussed. First, we will focus on various photosensitizers that have been used in combination with X-ray irradiation. To improve the efficacy of this modality, nanoparticles have been designed that allow the conversion of high-energy ionizing radiation into UV-visible light; these are potential candidates for the PDTX approach. They will be discussed at the end of this review.

摘要

光动力疗法是治疗癌症和其他疾病的一种治疗选择。PDT 在皮肤科中每天都在使用,最近在治疗神经胶质瘤、间皮瘤或前列腺方面的发展表明了这种治疗方式的疗效。为了提高 PDT 的疗效,正在开发不同的策略,例如使用靶向 PS 或纳米颗粒来提高选择性,以及设计光设备来更好地监测光剂量。由于光在组织中的穿透力低,另一种提高 PDT 治疗深部肿瘤疗效的方法是使用上转换 NPs 或双光子吸收化合物。这些化合物可以在光谱的红色部分被激发。一种相对较新的方法,我们称之为 PDTX,是使用 X 射线代替紫外线可见光进行更深层次的组织穿透。本文将描述该技术的原理,并讨论该模式的最新文献。首先,我们将重点介绍与 X 射线照射结合使用的各种光敏剂。为了提高这种治疗方式的疗效,设计了纳米颗粒,可将高能电离辐射转化为紫外线可见光;这些是 PDTX 方法的潜在候选者。它们将在本综述的最后进行讨论。

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