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通过纳米光催化技术精确根除癌细胞的研究进展。

Advancements in research on the precise eradication of cancer cells through nanophotocatalytic technology.

作者信息

Yao Changyang, Zhang Chensong, Fan Dongwei, Li Xuanhe, Zhang Shaofa, Liu Daoxin

机构信息

Department of General Surgery, Fengyang County People's Hospital, Chuzhou, China.

Department of Surgical Oncology Surgery (General Ward), The First Affiliated Hospital of Bengbu Medical College, Bengbu, China.

出版信息

Front Oncol. 2025 Apr 1;15:1523444. doi: 10.3389/fonc.2025.1523444. eCollection 2025.

Abstract

The rapid development of nanotechnology has significantly advanced the application of nanophotocatalysis in the medical field, particularly for cancer therapy. Traditional cancer treatments, such as chemotherapy and radiotherapy, often cause severe side effects, including damage to healthy tissues and the development of drug resistance. In contrast, nanophotocatalytic therapy offers a promising approach by utilizing nanomaterials that generate reactive oxygen species (ROS) under light activation, allowing for precise tumor targeting and minimizing collateral damage to surrounding tissues. This review systematically explores the latest advancements in highly efficient nanophotocatalysts for cancer treatment, focusing on their toxicological profiles, underlying mechanisms for cancer cell eradication, and potential for clinical application. Recent research shows that nanophotocatalysts, such as TiO, InO, and g-CN composites, along with photocatalysts with high conduction band or high valence band positions, generate ROS under light irradiation, which induces oxidative stress and leads to cancer cell apoptosis or necrosis. These ROS cause cellular damage by interacting with key biological molecules such as DNA, proteins, and lipids, triggering a cascade of biochemical reactions that ultimately result in cancer cell death. Furthermore, strategies such as S-scheme heterojunctions and oxygen vacancies (OVs) have been incorporated to enhance charge separation efficiency and light absorption, resulting in increased ROS generation, which improves photocatalytic performance for cancer cell targeting. Notably, these photocatalysts exhibit low toxicity to healthy cells, making them a safe and effective treatment modality. The review also discusses the challenges associated with photocatalytic cancer therapy, including limitations in light penetration and the need for improved biocompatibility. The findings suggest that nanophotocatalytic technology holds significant potential for precision cancer therapy, paving the way for safer and more effective treatment strategies.

摘要

纳米技术的迅速发展显著推动了纳米光催化在医学领域的应用,尤其是在癌症治疗方面。传统的癌症治疗方法,如化疗和放疗,常常会引起严重的副作用,包括对健康组织的损害以及耐药性的产生。相比之下,纳米光催化疗法提供了一种有前景的方法,它利用在光激活下能产生活性氧物种(ROS)的纳米材料,实现对肿瘤的精准靶向,并将对周围组织的附带损伤降至最低。本综述系统地探讨了用于癌症治疗的高效纳米光催化剂的最新进展,重点关注它们的毒理学概况、根除癌细胞的潜在机制以及临床应用潜力。最近的研究表明,诸如TiO、InO和g-CN复合材料等纳米光催化剂,以及具有高导带或高价带位置的光催化剂,在光照下会产生活性氧物种,进而引发氧化应激,导致癌细胞凋亡或坏死。这些活性氧物种通过与DNA、蛋白质和脂质等关键生物分子相互作用造成细胞损伤,引发一系列生化反应,最终导致癌细胞死亡。此外,还采用了诸如S型异质结和氧空位等策略来提高电荷分离效率和光吸收,从而增加活性氧物种的产生,提高对癌细胞靶向的光催化性能。值得注意的是,这些光催化剂对健康细胞表现出低毒性,使其成为一种安全有效的治疗方式。该综述还讨论了光催化癌症治疗相关的挑战,包括光穿透的局限性以及对改善生物相容性的需求。研究结果表明,纳米光催化技术在精准癌症治疗方面具有巨大潜力,为更安全有效的治疗策略铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cbb7/11996665/5b04bd70d4ab/fonc-15-1523444-g001.jpg

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