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光动力疗法诱导的癌症治疗线粒体靶向策略:新趋势与见解

Photodynamic Therapy Induced Mitochondrial Targeting Strategies for Cancer Treatment: Emerging Trends and Insights.

作者信息

Desai Vaibhavi Meghraj, Choudhary Mahima, Chowdhury Rajdeep, Singhvi Gautam

机构信息

Industrial Research Laboratory, Department of Pharmacy, FD-III, Birla Institute of Technology and Science, Pilani (BITS-PILANI), Pilani Campus, Vidya Vihar, Pilani, Rajasthan, India 333031.

Cancer Biology Laboratory, Department of Biological Sciences, FD-III, Birla Institute of Technology and Science, Pilani (BITS-PILANI), Pilani Campus, Vidya Vihar, Rajasthan, India 333031.

出版信息

Mol Pharm. 2024 Apr 1;21(4):1591-1608. doi: 10.1021/acs.molpharmaceut.3c01185. Epub 2024 Feb 23.

Abstract

The perpetuity of cancer prevalence at a global level calls for development of novel therapeutic approaches with improved targetability and reduced adverse effects. Conventional cancer treatments have a multitude of limitations such as nonselectivity, invasive nature, and severe adverse effects. Chemotherapy is also losing its efficacy because of the development of multidrug resistance in the majority of cancers. To address these issues, selective targeting-based approaches are being explored for an effective cancer treatment. Mitochondria, being the moderator of a majority of crucial cellular pathways like metabolism, apoptosis, and reactive oxygen species (ROS) homeostasis, are an effective targeting site. Mitochondria-targeted photodynamic therapy (PDT) has arisen as a potential approach in this endeavor. By designing photosensitizers (PSs) that preferentially accumulate in the mitochondria, PDT offers a localized technique to induce cytotoxicity in cancer cells. In this review, we intend to explore the crucial principles and challenges associated with mitochondria-targeted PDT, including variability in mitochondrial function, mitochondria-specific PSs, targeted nanocarrier-based monotherapy, and combination therapies. The hurdles faced by this emerging strategy with respect to safety, optimization, clinical translation, and scalability are also discussed. Nonetheless, mitochondria-targeted PDT exhibits a significant capacity in cancer treatment, especially in combination with other therapeutic modalities. With perpetual research and technological advancements, this treatment strategy is a great addition to the arsenal of cancer treatment options, providing better tumor targetability while reducing the damage to surrounding healthy tissues. This review emphasizes the current status of mitochondria-targeted PDT, limitations, and future prospects in its pursuit of safe and efficacious cancer therapy.

摘要

全球层面癌症患病率的持续存在,要求开发具有更高靶向性和更低副作用的新型治疗方法。传统的癌症治疗方法有诸多局限性,如缺乏选择性、具有侵入性以及严重的副作用。由于大多数癌症中多药耐药性的出现,化疗也正在失去其疗效。为了解决这些问题,人们正在探索基于选择性靶向的方法来进行有效的癌症治疗。线粒体作为代谢、细胞凋亡和活性氧(ROS)稳态等大多数关键细胞通路的调节者,是一个有效的靶向位点。线粒体靶向光动力疗法(PDT)已成为这一努力中的一种潜在方法。通过设计优先在线粒体中积累的光敏剂(PSs),PDT提供了一种在癌细胞中诱导细胞毒性的局部技术。在这篇综述中,我们打算探讨与线粒体靶向PDT相关的关键原理和挑战,包括线粒体功能的变异性、线粒体特异性PSs、基于靶向纳米载体的单一疗法以及联合疗法。还讨论了这种新兴策略在安全性、优化、临床转化和可扩展性方面面临的障碍。尽管如此,线粒体靶向PDT在癌症治疗中表现出显著的能力,尤其是与其他治疗方式联合使用时。随着持续的研究和技术进步,这种治疗策略是癌症治疗选择武器库中的一个重要补充,在减少对周围健康组织损伤的同时提供更好的肿瘤靶向性。这篇综述强调了线粒体靶向PDT在追求安全有效的癌症治疗方面的现状、局限性和未来前景。

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