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提高纳米材料介导的癌症光热治疗的策略。

Strategies to Improve Cancer Photothermal Therapy Mediated by Nanomaterials.

机构信息

CICS-UBI, Centro de Investigação em Ciências da Saúde, Universidade da Beira Interior, 6200-506, Covilhã, Portugal.

出版信息

Adv Healthc Mater. 2017 May;6(10). doi: 10.1002/adhm.201700073. Epub 2017 Mar 21.

Abstract

The deployment of hyperthermia-based treatments for cancer therapy has captured the attention of different researchers worldwide. In particular, the application of light-responsive nanomaterials to mediate hyperthermia has revealed promising results in several pre-clinical assays. Unlike conventional therapies, these nanostructures can display a preferential tumor accumulation and thus mediate, upon irradiation with near-infrared light, a selective hyperthermic effect with temporal resolution. Different types of nanomaterials such as those based on gold, carbon, copper, molybdenum, tungsten, iron, palladium and conjugated polymers have been used for this photothermal modality. This progress report summarizes the different strategies that have been applied so far for increasing the efficacy of the photothermal therapeutic effect mediated by nanomaterials, namely those that improve the accumulation of nanomaterials in tumors (e.g. by changing the corona composition or through the functionalization with targeting ligands), increase nanomaterials' intrinsic capacity to generate photoinduced heat (e.g. by synthesizing new nanomaterials or assembling nanostructures) or by optimizing the parameters related to the laser light used in the irradiation process (e.g. by modulating the radiation wavelength). Overall, the development of new strategies or the optimization and combination of the existing ones will surely give a major contribution for the application of nanomaterials in cancer PTT.

摘要

基于热疗的癌症治疗方法的应用已经引起了全球不同研究人员的关注。特别是,将光响应纳米材料应用于介导热疗已经在几项临床前研究中取得了有希望的结果。与传统疗法不同,这些纳米结构可以表现出对肿瘤的优先积累,因此可以在近红外光照射下,实现具有时间分辨率的选择性热疗效应。已经使用了不同类型的纳米材料,例如基于金、碳、铜、钼、钨、铁、钯和共轭聚合物的纳米材料,用于这种光热模式。本进展报告总结了迄今为止为提高纳米材料介导的光热治疗效果的疗效而应用的不同策略,即那些可以提高纳米材料在肿瘤中的积累的策略(例如通过改变冠组成或通过与靶向配体的功能化),增加纳米材料产生光致热的固有能力(例如通过合成新的纳米材料或组装纳米结构),或通过优化与照射过程中激光相关的参数(例如通过调节辐射波长)。总的来说,新策略的开发或现有策略的优化和组合,必将为纳米材料在癌症 PTT 中的应用做出重大贡献。

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