Ultraviolet (UV) radiation: a double-edged sword in cancer development and therapy.

IF 6.3 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Zhen-Wei Yu, Min Zheng, Hua-Yang Fan, Xin-Hua Liang, Ya-Ling Tang
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引用次数: 0

Abstract

It has long been widely acknowledged that ultraviolet (UV) light is an environment risk factor that can lead to cancer, particularly skin cancer. However, it is worth noting that UV radiation holds potential for cancer treatment as a relatively high-energy electromagnetic wave. With the help of nanomaterials, the role of UV radiation has caught increasing attention in cancer treatment. In this review, we briefly summarized types of UV-induced cancers, including malignant melanoma, squamous cell carcinoma, basal cell carcinoma, Merkel cell carcinoma. Importantly, we discussed the primary mechanisms underlying UV carcinogenesis, including mutations by DNA damage, immunosuppression, inflammation and epigenetic alterations. Historically limited by its shallow penetration depth, the introduction of nanomaterials has dramatically transformed the utilization of UV light in cancer treatment. The direct effect of UV light itself generally leads to the suppression of cancer cell growth and the initiation of apoptosis and ferroptosis. It can also be utilized to activate photosensitizers for reactive oxygen species (ROS) production, sensitize radiotherapy and achieve controlled drug release. Finally, we comprehensively weigh the significant risks and limitations associated with the therapeutic use of UV radiation. And the contradictory effect of UV exposure in promoting and inhibiting tumor has been discussed. This review provides clues for potential clinical therapy as well as future study directions in the UV radiation field. The precise delivery and control of UV light or nanomaterials and the wavelength as well as dose effects of UV light are needed for a thorough understanding of UV radiation.

紫外线(UV)辐射:癌症发展和治疗的双刃剑。
长期以来,人们普遍认为紫外线(UV)是导致癌症,尤其是皮肤癌的环境风险因素。然而,值得注意的是,紫外线辐射作为一种能量相对较高的电磁波,在癌症治疗方面具有潜力。在纳米材料的帮助下,紫外线辐射在癌症治疗中的作用日益受到关注。在这篇综述中,我们简要总结了紫外线诱发癌症的类型,包括恶性黑色素瘤、鳞状细胞癌、基底细胞癌和梅克尔细胞癌。重要的是,我们讨论了紫外线致癌的主要机制,包括 DNA 损伤突变、免疫抑制、炎症和表观遗传学改变。紫外线的穿透深度较浅,一直以来受到限制,纳米材料的引入极大地改变了紫外线在癌症治疗中的应用。紫外线本身的直接作用通常会抑制癌细胞的生长,启动细胞凋亡和铁变态反应。紫外线还可用于激活光敏剂以产生活性氧(ROS)、使放疗增敏以及实现药物的可控释放。最后,我们全面权衡了与紫外线辐射治疗用途相关的重大风险和局限性。此外,还讨论了紫外线照射在促进和抑制肿瘤方面的矛盾效应。这篇综述为紫外线辐射领域的潜在临床治疗和未来研究方向提供了线索。要深入了解紫外线辐射,就需要精确传递和控制紫外线或纳米材料,以及紫外线的波长和剂量效应。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
6.30
自引率
0.00%
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审稿时长
10 weeks
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