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光动力纳米医学在实体瘤治疗中的应用:前景与挑战。

Photodynamic nanomedicine in the treatment of solid tumors: perspectives and challenges.

机构信息

Department of Biomedical Engineering, Case Western Reserve University, 2071 Martin Luther King Drive, Cleveland 44106, USA.

出版信息

J Control Release. 2013 May 28;168(1):88-102. doi: 10.1016/j.jconrel.2013.02.020. Epub 2013 Mar 6.

Abstract

Photodynamic therapy (PDT) is a promising treatment strategy where activation of photosensitizer drugs with specific wavelengths of light results in energy transfer cascades that ultimately yield cytotoxic reactive oxygen species which can render apoptotic and necrotic cell death. Without light the photosensitizer drugs are minimally toxic and the photoactivating light itself is non-ionizing. Therefore, harnessing this mechanism in tumors provides a safe and novel way to selectively eradicate tumor with reduced systemic toxicity and side effects on healthy tissues. For successful PDT of solid tumors, it is necessary to ensure tumor-selective delivery of the photosensitizers, as well as, the photoactivating light and to establish dosimetric correlation of light and drug parameters to PDT-induced tumor response. To this end, the nanomedicine approach provides a promising way towards enhanced control of photosensitizer biodistribution and tumor-selective delivery. In addition, refinement of nanoparticle designs can also allow incorporation of imaging agents, light delivery components and dosimetric components. This review aims at describing the current state-of-the-art regarding nanomedicine strategies in PDT, with a comprehensive narrative of the research that has been carried out in vitro and in vivo, with a discussion of the nanoformulation design aspects and a perspective on the promise and challenges of PDT regarding successful translation into clinical application.

摘要

光动力疗法(PDT)是一种很有前途的治疗策略,它通过特定波长的光激活光敏剂药物,引发能量转移级联反应,最终产生细胞毒性的活性氧物质,导致细胞凋亡和坏死。在没有光照的情况下,光敏剂药物的毒性极小,而光激活光本身是非电离的。因此,利用这一机制在肿瘤中提供了一种安全且新颖的方法,可以选择性地消除肿瘤,同时减少全身毒性和对健康组织的副作用。为了成功地进行实体瘤 PDT,有必要确保光敏剂的肿瘤选择性递送,以及光激活光的递送,并建立光和药物参数与 PDT 诱导的肿瘤反应之间的剂量学相关性。为此,纳米医学方法为增强对光敏剂生物分布和肿瘤选择性递送的控制提供了一种很有前途的途径。此外,改进纳米颗粒设计还可以允许纳入成像剂、光传输组件和剂量学组件。本文旨在描述 PDT 中纳米医学策略的最新现状,全面叙述已在体外和体内进行的研究,讨论纳米制剂设计方面,并对 PDT 在成功转化为临床应用方面的前景和挑战进行展望。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c344/3780355/63b74039c431/nihms465702f1.jpg

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