Liang Shuang, Liu Yufei, Zhu Hongquan, Liao Guangfu, Zhu Wenzhen, Zhang Li
Department of Radiology, Tongji Hospital, Tongji Medical College Huazhong University of Science and Technology Wuhan China.
College of Material Engineering Fujian Agriculture and Forestry University Fuzhou China.
Exploration (Beijing). 2024 Mar 24;4(6):20230163. doi: 10.1002/EXP.20230163. eCollection 2024 Dec.
Photothermal therapy (PTT) has garnered significant attention in recent years, but the standalone application of PTT still faces limitations that hinder its ability to achieve optimal therapeutic outcomes. Nitric oxide (NO), being one of the most extensively studied gaseous molecules, presents itself as a promising complementary candidate for PTT. In response, various nanosystems have been developed to enable the simultaneous utilization of PTT and NO-mediated gas therapy (GT), with the integration of photothermal agents (PTAs) and thermally-sensitive NO donors being the prevailing approach. This combination seeks to leverage the synergistic effects of PTT and GT while mitigating the potential risks associated with gas toxicity through the use of a single laser irradiation. Furthermore, additional internal or external stimuli have been employed to trigger NO release when combined with different types of PTAs, thereby further enhancing therapeutic efficacy. This comprehensive review aims to summarize recent advancements in NO gas-assisted cancer photothermal treatment. It commences by providing an overview of various types of NO donors and precursors, including those sensitive to photothermal, light, ultrasound, reactive oxygen species, and glutathione. These NO donors and precursors are discussed in the context of dual-modal PTT/GT. Subsequently, the incorporation of other treatment modalities such as chemotherapy (CHT), photodynamic therapy (PDT), alkyl radical therapy, radiation therapy, and immunotherapy (IT) in the creation of triple-modal therapeutic nanoplatforms is presented. The review further explores tetra-modal therapies, such as PTT/GT/CHT/PDT, PTT/GT/CHT/chemodynamic therapy (CDT), PTT/GT/PDT/IT, PTT/GT/starvation therapy (ST)/IT, PTT/GT/Ca overload/IT, PTT/GT/ferroptosis (FT)/IT, and PTT/GT/CDT/IT. Finally, potential challenges and future perspectives concerning these novel paradigms are discussed. This comprehensive review is anticipated to serve as a valuable resource for future studies focused on the development of innovative photothermal/NO-based cancer nanotheranostics.
近年来,光热疗法(PTT)备受关注,但PTT的单独应用仍面临局限性,阻碍了其实现最佳治疗效果的能力。一氧化氮(NO)作为研究最为广泛的气态分子之一,是一种很有前景的PTT互补候选物。为此,人们开发了各种纳米系统,以实现PTT和NO介导的气体疗法(GT)的同时应用,其中将光热剂(PTA)与热敏NO供体相结合是主要方法。这种组合旨在利用PTT和GT的协同效应,同时通过单次激光照射减轻与气体毒性相关的潜在风险。此外,当与不同类型的PTA结合使用时,还采用了额外的内部或外部刺激来触发NO释放,从而进一步提高治疗效果。这篇综述旨在总结NO气体辅助癌症光热治疗的最新进展。首先概述了各种类型的NO供体和前体,包括对光热、光、超声、活性氧和谷胱甘肽敏感的供体和前体。在双模式PTT/GT的背景下讨论了这些NO供体和前体。随后,介绍了在创建三模式治疗纳米平台时纳入其他治疗模式,如化疗(CHT)、光动力疗法(PDT)、烷基自由基疗法、放射疗法和免疫疗法(IT)。该综述进一步探讨了四模式疗法,如PTT/GT/CHT/PDT、PTT/GT/CHT/化学动力学疗法(CDT)、PTT/GT/PDT/IT、PTT/GT/饥饿疗法(ST)/IT、PTT/GT/Ca过载/IT、PTT/GT/铁死亡(FT)/IT和PTT/GT/CDT/IT。最后,讨论了这些新范式面临的潜在挑战和未来前景。这篇综述有望为未来专注于开发创新的基于光热/NO的癌症纳米诊疗方法的研究提供有价值的资源。