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利用纳米颗粒克服当前肿瘤光动力疗法的障碍。

Overcoming the obstacles of current photodynamic therapy in tumors using nanoparticles.

作者信息

Lee Donghyun, Kwon Soonmin, Jang Seok-Young, Park Eunyoung, Lee Yeeun, Koo Heebeom

机构信息

Department of Medical Life Sciences, Department of Biomedicine & Health Sciences, and Catholic Photomedicine Research Institute, College of Medicine, The Catholic University of Korea, 222 Banpo-daero, Seocho-gu, Seoul, 06591, Republic of Korea.

出版信息

Bioact Mater. 2021 Jun 26;8:20-34. doi: 10.1016/j.bioactmat.2021.06.019. eCollection 2022 Feb.

Abstract

Photodynamic therapy (PDT) has been applied in clinical treatment of tumors for a long time. However, insufficient supply of pivotal factors including photosensitizer (PS), light, and oxygen in tumor tissue dramatically reduces the therapeutic efficacy of PDT. Nanoparticles have received an influx of attention as drug carriers, and recent studies have demonstrated their promising potential to overcome the obstacles of PDT in tumor tissue. Physicochemical optimization for passive targeting, ligand modification for active targeting, and stimuli-responsive release achieved efficient delivery of PS to tumor tissue. Various trials using upconversion NPs, two-photon lasers, X-rays, and bioluminescence have provided clues for efficient methods of light delivery to deep tissue. Attempts have been made to overcome unfavorable tumor microenvironments via artificial oxygen generation, Fenton reaction, and combination with other chemical drugs. In this review, we introduce these creative approaches to addressing the hurdles facing PDT in tumors. In particular, the studies that have been validated in animal experiments are preferred in this review over proof-of-concept studies that were only performed in cells.

摘要

光动力疗法(PDT)长期以来一直应用于肿瘤的临床治疗。然而,肿瘤组织中包括光敏剂(PS)、光和氧气在内的关键因素供应不足,极大地降低了PDT的治疗效果。纳米颗粒作为药物载体受到了广泛关注,最近的研究表明它们在克服肿瘤组织中PDT障碍方面具有广阔的潜力。通过物理化学优化实现被动靶向、通过配体修饰实现主动靶向以及刺激响应释放,可将PS有效地递送至肿瘤组织。使用上转换纳米粒子、双光子激光、X射线和生物发光的各种试验为向深部组织有效输送光的方法提供了线索。人们尝试通过人工产氧、芬顿反应以及与其他化学药物联合使用来克服不利的肿瘤微环境。在这篇综述中,我们介绍了这些解决肿瘤中PDT所面临障碍的创新方法。特别是,本综述优先选择在动物实验中得到验证的研究,而非仅在细胞中进行的概念验证研究。

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