State Key Laboratory of Rare Earth Resource Utilization, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, Changchun, 130022, China.
School of Applied Chemistry and Engineering, University of Science and Technology of China, Hefei, 230026, China.
Adv Mater. 2023 Sep;35(38):e2304176. doi: 10.1002/adma.202304176. Epub 2023 Jul 21.
With the promotion of nanochemistry research, large numbers of nanomaterials have been applied in vivo to produce desirable cytotoxic substances in response to endogenous or exogenous stimuli for achieving disease-specific therapy. However, the performance of nanomaterials is a critical issue that is difficult to improve and optimize under biological conditions. Defect-engineered nanoparticles have become the most researched hot materials in biomedical applications recently due to their excellent physicochemical properties, such as optical properties and redox reaction capabilities. Importantly, the properties of nanomaterials can be easily adjusted by regulating the type and concentration of defects in the nanoparticles without requiring other complex designs. Therefore, this tutorial review focuses on biomedical defect engineering and briefly discusses defect classification, introduction strategies, and characterization techniques. Several representative defective nanomaterials are especially discussed in order to reveal the relationship between defects and properties. A series of disease treatment strategies based on defective engineered nanomaterials are summarized. By summarizing the design and application of defective engineered nanomaterials, a simple but effective methodology is provided for researchers to design and improve the therapeutic effects of nanomaterial-based therapeutic platforms from a materials science perspective.
随着纳米化学研究的推进,大量的纳米材料已被应用于体内,以产生理想的细胞毒性物质,以响应内源性或外源性刺激,从而实现针对特定疾病的治疗。然而,纳米材料的性能是一个关键问题,在生物条件下很难加以改善和优化。最近,由于其出色的物理化学性能,如光学性能和氧化还原反应能力,缺陷工程纳米粒子已成为生物医学应用中研究最热门的材料。重要的是,通过调节纳米粒子中缺陷的类型和浓度,可以轻松调整纳米材料的性质,而无需其他复杂的设计。因此,本教程综述重点介绍生物医学缺陷工程,并简要讨论缺陷分类、引入策略和表征技术。特别讨论了几种有代表性的缺陷纳米材料,以揭示缺陷与性能之间的关系。总结了一系列基于缺陷工程纳米材料的疾病治疗策略。通过总结缺陷工程纳米材料的设计和应用,为研究人员从材料科学的角度设计和改善基于纳米材料的治疗平台的治疗效果提供了一种简单而有效的方法。