用于增强光动力治疗的纳米材料

L. F. Freitas
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引用次数: 5

摘要

光动力疗法是一种消除浅表肿瘤和控制感染的非侵入性选择。然而,尽管一些方案已经被批准用于临床,如果PDT的一些主要障碍被克服,它的应用可能会更广泛。例如,最有效的光敏剂是疏水性的,所以如果静脉注射它们,它们倾向于聚集并被血液中的吞噬细胞内化,从而损害到目标部位的输送。此外,可见光在组织中的穿透力有限,因此PDT的主要应用仅限于浅表肿瘤,除非采用侵入性手术使光线到达更深的部位。另一个障碍是肿瘤中经常发生的缺氧,这阻碍了PDT的充分发挥,因为它依赖于持续的氧气供应。在本章中,读者将发现一些基于纳米技术的策略,以克服这些和其他障碍,使PDT充分发挥其临床潜力,即缺氧恢复方案,x射线驱动的PDT,切伦科夫辐射驱动的PDT,以及主动肿瘤靶向。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Nanomaterials for Enhanced Photodynamic Therapy
Photodynamic therapy is a non-invasive option for eliminating superficial tumors and to control infections. However, despite some protocols are already approved for the clinic, PDT applications could be much broader if some of its main hindrances were overcome. For instance, the most efficient photosensitizers are hydrophobic, so if one injects them intravenously they tend to aggregate and to be internalized by phagocytes in the blood, impairing the delivery to the target site. In addition, visible light has a limited penetration in tissues, therefore the main applications of PDT are limited to superficial tumors unless an invasive procedure is used for the light to reach deeper sites. Another setback is the hypoxia that commonly happens in tumors, hindering the full potential of PDT as it depends on a constant oxygen supply. In this chapter the reader will find some strategies based on Nanotechnology to overcome these and other obstacles for PDT to reach its full clinical potential, i.e. hypoxia-reverting protocols, X-ray-driven PDT, Cherenkov radiation-driven PDT, and active tumor-targeting.
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