Xiong Xinyu, Wang Li, He Shan, Guan Shanyue, Li Dawei, Zhang Mingming, Qu Xiaozhong
School of Light Industry, Beijing Technology and Business University, Beijing, China.
Key Laboratory of Photochemical Conversion and Optoelectronic Materials, Technical Institute of Physics and Chemistry, Chinese Academy of Sciences, Beijing, China.
Front Bioeng Biotechnol. 2022 Aug 25;10:972837. doi: 10.3389/fbioe.2022.972837. eCollection 2022.
Phototherapy and multimodal synergistic phototherapy (including synergistic photothermal and photodynamic therapy as well as combined phototherapy and other therapies) are promising to achieve accurate diagnosis and efficient treatment for tumor, providing a novel opportunity to overcome cancer. Notably, various nanomaterials have made significant contributions to phototherapy through both improving therapeutic efficiency and reducing side effects. The most key factor affecting the performance of phototherapeutic nanomaterials is their microstructure which in principle determines their physicochemical properties and the resulting phototherapeutic efficiency. Vacancy defects ubiquitously existing in phototherapeutic nanomaterials have a great influence on their microstructure, and constructing and regulating vacancy defect in phototherapeutic nanomaterials is an essential and effective strategy for modulating their microstructure and improving their phototherapeutic efficacy. Thus, this inspires growing research interest in vacancy engineering strategies and vacancy-engineered nanomaterials for phototherapy. In this review, we summarize the understanding, construction, and application of vacancy defects in phototherapeutic nanomaterials. Starting from the perspective of defect chemistry and engineering, we also review the types, structural features, and properties of vacancy defects in phototherapeutic nanomaterials. Finally, we focus on the representative vacancy defective nanomaterials recently developed through vacancy engineering for phototherapy, and discuss the significant influence and role of vacancy defects on phototherapy and multimodal synergistic phototherapy. Therefore, we sincerely hope that this review can provide a profound understanding and inspiration for the design of advanced phototherapeutic nanomaterials, and significantly promote the development of the efficient therapies against tumor.
光疗法和多模态协同光疗法(包括协同光热疗法和光动力疗法以及联合光疗法和其他疗法)有望实现肿瘤的准确诊断和高效治疗,为攻克癌症提供了新的契机。值得注意的是,各种纳米材料通过提高治疗效率和减少副作用,为光疗法做出了重大贡献。影响光治疗纳米材料性能的最关键因素是其微观结构,原则上微观结构决定了它们的物理化学性质以及由此产生的光治疗效率。光治疗纳米材料中普遍存在的空位缺陷对其微观结构有很大影响,在光治疗纳米材料中构建和调控空位缺陷是调节其微观结构和提高其光治疗效果的一种必不可少且有效的策略。因此,这激发了人们对用于光疗法的空位工程策略和空位工程纳米材料越来越浓厚的研究兴趣。在本综述中,我们总结了光治疗纳米材料中空位缺陷的认识、构建和应用。从缺陷化学和工程的角度出发,我们还综述了光治疗纳米材料中空位缺陷的类型、结构特征和性质。最后,我们重点介绍了最近通过空位工程开发的用于光疗法的代表性空位缺陷纳米材料,并讨论了空位缺陷对光疗法和多模态协同光疗法的重大影响和作用。因此,我们衷心希望本综述能够为先进光治疗纳米材料的设计提供深刻的理解和启发,并显著推动高效肿瘤治疗方法的发展。