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多功能纳米系统驱动的光动力免疫疗法

Multifunctional Nanosystems Powered Photodynamic Immunotherapy.

作者信息

Ma Yunong, Xiao Fengfeng, Lu Cuixia, Wen Liewei

机构信息

Medical College, Guangxi University, Nanning, China.

Zhuhai Precision Medical Center, Zhuhai People's Hospital (Zhuhai Hospital Affiliated With Jinan University), Jinan University, Zhuhai, China.

出版信息

Front Pharmacol. 2022 May 11;13:905078. doi: 10.3389/fphar.2022.905078. eCollection 2022.

Abstract

Photodynamic Therapy (PDT) with the intrinsic advantages including non-invasiveness, spatiotemporal selectivity, low side-effects, and immune activation ability has been clinically approved for the treatment of head and neck cancer, esophageal cancer, pancreatic cancer, prostate cancer, and esophageal squamous cell carcinoma. Nevertheless, the PDT is only a strategy for local control of primary tumor, that it is hard to remove the residual tumor cells and inhibit the tumor metastasis. Recently, various smart nanomedicine-based strategies are developed to overcome the barriers of traditional PDT including the drawbacks of traditional photosensitizers, limited tissue penetrability of light, inefficient induction of tumor cell death and tumor resistance to the therapy. More notably, a growing number of studies have focused on improving the therapeutic efficiency by eliciting host immune system with versatile nanoplatforms, which heralds a broader clinical application prospect of PDT in the future. Herein, the pathways of PDT induced-tumor destruction, especially the host immune response is summarized, and focusing on the recent progress of nanosystems-enhanced PDT through eliciting innate immunity and adaptive immunity. We expect it will provide some insights for conquering the drawbacks current PDT and expand the range of clinical application through this review.

摘要

光动力疗法(PDT)具有非侵入性、时空选择性、低副作用和免疫激活能力等固有优势,已被临床批准用于治疗头颈癌、食管癌、胰腺癌、前列腺癌和食管鳞状细胞癌。然而,PDT只是一种局部控制原发性肿瘤的策略,难以清除残留的肿瘤细胞并抑制肿瘤转移。最近,人们开发了各种基于智能纳米药物的策略来克服传统PDT的障碍,包括传统光敏剂的缺点、光的组织穿透性有限、肿瘤细胞死亡诱导效率低下以及肿瘤对该疗法的抗性。更值得注意的是,越来越多的研究致力于通过使用多功能纳米平台激发宿主免疫系统来提高治疗效率,这预示着PDT在未来具有更广阔的临床应用前景。在此,总结了PDT诱导肿瘤破坏的途径,尤其是宿主免疫反应,并重点介绍了通过激发固有免疫和适应性免疫来增强纳米系统PDT的最新进展。我们期望通过这篇综述为克服当前PDT的缺点和扩大临床应用范围提供一些见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8027/9130658/8ebd1b054aeb/fphar-13-905078-g001.jpg

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