Zvereva Marina V, Zhmurova Anna V
A.E. Favorsky Irkutsk Institute of Chemistry of the Siberian Branch of the Russian Academy of Sciences, Irkutsk, Russia.
Biophys Rev. 2023 Oct 3;15(5):963-969. doi: 10.1007/s12551-023-01148-4. eCollection 2023 Oct.
Nanomaterials are one of the most promising classes of advanced materials with fine-tuned biological activities. This is evidenced by the presence of redox activity of a number of nanoparticles aimed at inhibiting free radicals and/or mimicking the functions of enzymes. At the same time, it is impossible to study the expression of these biological properties without the use of well-standardized, representative techniques that provide availability, high precision, sensitivity, and selectivity of the measured characteristics. A method that satisfies these requirements is chemiluminescence analysis, which is widely used both in clinical analysis and to characterize the antioxidant activity of substances of natural or synthetic origin. Recently, a trend of using chemiluminescence analysis to study the biological activity of nanomaterials has appeared as a suitable alternative to spectroscopic and electrochemical techniques. This review briefly describes the examples of successful applications of chemiluminescence methods to study radical-binding and enzyme-like activities of nanomaterials. We discuss the data about the effect of the used reagents (radical-generating systems, chemiluminescence activators) and experimental conditions on the obtained values characterizing the nanomaterials activity.
纳米材料是最具前景的先进材料类别之一,具有经过精细调节的生物活性。许多旨在抑制自由基和/或模拟酶功能的纳米颗粒具有氧化还原活性,这证明了这一点。同时,如果不使用标准化良好、具有代表性的技术,就无法研究这些生物学特性的表达,而这些技术要能确保所测特性的可获得性、高精度、高灵敏度和高选择性。满足这些要求的一种方法是化学发光分析,它在临床分析以及表征天然或合成来源物质的抗氧化活性方面都有广泛应用。最近,出现了一种使用化学发光分析来研究纳米材料生物活性的趋势,这是光谱和电化学技术的合适替代方法。本综述简要介绍了化学发光方法在研究纳米材料自由基结合和类酶活性方面成功应用的实例。我们讨论了所用试剂(自由基产生系统、化学发光激活剂)和实验条件对表征纳米材料活性的所得值的影响的数据。