Key Laboratory of Forest Plant Ecology, Ministry of Education, College of Chemistry, Chemical Engineering and Resource Utilization, Northeast Forestry University, Harbin, 150040, China.
Chem Rec. 2023 May;23(5):e202300034. doi: 10.1002/tcr.202300034. Epub 2023 Apr 3.
Rhodium (Rh) is a non-toxic transition metal used as various nanomaterials with unique structures and properties. Rh-based nanozymes can mimic the activities of natural enzymes, overcome the limitation of the application scope of natural enzymes, and interact with various biological microenvironments to play a variety of functions. Rh-based nanozymes can be synthesized in various ways, and different modification and regulation methods can also enable users to control catalytic performance by adjusting enzyme active sites. The construction of Rh-based nanozymes has attracted great interest in the biomedical field and impacted the industry and other areas. This paper reviews the typical synthesis and modification strategies, unique properties, applications, challenges, and prospects of Rh-based nanozymes. Next, the unique features of Rh-based nanozymes are emphasized, including adjustable enzyme-like activity, stability, and biocompatibility. In addition, we discuss Rh-based nanozymes biosensors and detection, biomedical therapy, and industrial and other applications. Finally, the future challenges and prospects of Rh-based nanozymes are proposed.
铑(Rh)是一种无毒的过渡金属,用于具有独特结构和性能的各种纳米材料。基于铑的纳米酶可以模拟天然酶的活性,克服天然酶应用范围的限制,并与各种生物微环境相互作用,发挥多种功能。基于铑的纳米酶可以通过多种方式合成,不同的修饰和调节方法也可以使用户通过调节酶活性位点来控制催化性能。基于铑的纳米酶的构建在生物医学领域引起了极大的兴趣,并影响了工业和其他领域。本文综述了基于铑的纳米酶的典型合成和修饰策略、独特性质、应用、挑战和前景。接下来,强调了基于铑的纳米酶的独特特征,包括可调的酶样活性、稳定性和生物相容性。此外,我们还讨论了基于铑的纳米酶生物传感器和检测、生物医学治疗以及工业等应用。最后,提出了基于铑的纳米酶的未来挑战和前景。