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不同还原剂制备的带负电荷表面的胶体金纳米颗粒酶活性的检测与差异分析

Detection and Difference Analysis of the Enzyme Activity of Colloidal Gold Nanoparticles With Negatively Charged Surfaces Prepared by Different Reducing Agents.

作者信息

Ma Mingze, Cao Junjun, Fang Ashe, Xu Zhihua, Zhang Tieying, Shi Feng

机构信息

College of Life Science, Shihezi University, Shihezi, China.

出版信息

Front Chem. 2022 Jan 14;9:812083. doi: 10.3389/fchem.2021.812083. eCollection 2021.

Abstract

Nanozymes are particles with diameters in the range of 1-100 nm, which has been widely studied due to their biological enzyme-like properties and stability that natural enzymes do not have. In this study, several reducing agents with different structures (catechol (Cc), hydroquinone (Hq), resorcinol (Rs), vitamin C (Vc), pyrogallic acid (Ga), sodium citrate (Sc), sodium malate (Sm), and sodium tartrate (St)) were used to prepare colloidal gold with a negative charge and similar particle size by controlling the temperature and pH. The affinity analysis of the substrate HO and TMB showed that the order of activities of colloidal gold Nanozymes prepared by different reducing agents was Cc, Hq, Rs, Vc, Ga, Sc, Sm, St. It was also found that the enzyme activity of colloidal gold reduced by benzene rings is higher than that of the colloidal gold enzyme reduced by linear chains. Finally, we discussed the activity of the colloidal gold peroxidase based on the number and position of isomers and functional groups; and demonstrated that the nanozymes activity is affected by the surface activity of colloidal gold, the elimination of hydroxyl radicals and the TMB binding efficiency.

摘要

纳米酶是直径在1-100纳米范围内的颗粒,由于其具有天然酶所不具备的类生物酶性质和稳定性,因此受到了广泛研究。在本研究中,使用了几种具有不同结构的还原剂(邻苯二酚(Cc)、对苯二酚(Hq)、间苯二酚(Rs)、维生素C(Vc)、焦性没食子酸(Ga)、柠檬酸钠(Sc)、苹果酸钠(Sm)和酒石酸钠(St)),通过控制温度和pH值来制备带负电荷且粒径相似的胶体金。底物HO和TMB的亲和力分析表明,不同还原剂制备的胶体金纳米酶的活性顺序为Cc、Hq、Rs、Vc、Ga、Sc、Sm、St。还发现,由苯环还原的胶体金的酶活性高于由线性链还原的胶体金酶。最后,我们基于异构体和官能团的数量及位置讨论了胶体金过氧化物酶的活性;并证明了纳米酶活性受胶体金表面活性、羟基自由基的消除以及TMB结合效率的影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b80e/8795587/28910fe8d9ab/fchem-09-812083-g001.jpg

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