Evaluation of Biochemical Behavior and Stability of Gold Nanoparticles with High Intrinsic Peroxidase-Like Activity

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引用次数: 5

Abstract

In this study, the biochemical behavior and stability of gold nanoparticles with intrinsic peroxidase-like activity were evaluated as potential native enzyme alternatives. The gold nanoparticles were synthesized at physiological temperature using bovine serum albumin as the stabilizer and then characterized by the TEM imaging method. Afterward, their peroxidase-like activity was checked upon irreversible oxidation of 3,3’-diaminobenzidine to produce a brown-colored indamine polymer, and the specific enzyme-like activity of the as-prepared nanoparticles was also calculated. The results showed a specific activity as high as 0.4212 UI µM-1 for the as-prepared gold nanoparticles. Thereafter, their stability and biochemical performances were evaluated considering their enzyme-like activity as a reliable index. The as-prepared nanoparticles showed their maximal activity at pH=5.0 and 20.0±1.0 ℃ according to the results of pH and thermal stability studies, in order. Besides, the nanoparticles saved above 80.0% of their maximal activity over pH=3.0-4.0. As a significant advantage compared to the natural enzymes, the as-synthesized gold nanoparticles revealed a pHindependent enzyme-like activity over a wide pH range of pH=7.0-10.0 along with a temperature-independent activity over t=23-28℃. The salt stability studies showed that their activity was not affected by variations in the ionic strength of the reaction media. The kinetics results showed a Vmax of 83.3 µM min-1 and a Km as very low as 0.005 M for the gold nanoparticles. Considering the above results, the as-prepared gold nanoparticles can be considered high stable nanozymes with high intrinsic peroxidase-like activity and excellent catalytic efficiency.
具有高内在过氧化物酶样活性的金纳米颗粒的生化行为和稳定性评价
在本研究中,研究了具有内在过氧化物酶样活性的金纳米颗粒作为潜在的天然酶替代品的生化行为和稳定性。以牛血清白蛋白为稳定剂,在生理温度下合成了金纳米颗粒,并用TEM成像方法对其进行了表征。然后,通过不可逆氧化3,3 ' -二氨基联苯胺生成棕色的靛胺聚合物来检测它们的过氧化物酶样活性,并计算制备的纳米颗粒的特定酶样活性。结果表明,所制备的金纳米粒子的比活性高达0.4212 UIµM-1。然后,以类酶活性为可靠指标,对其稳定性和生化性能进行评价。从pH和热稳定性的研究结果来看,所制备的纳米颗粒在pH=5.0和20.0±1.0℃时活性最大,依次为:此外,在pH=3.0-4.0时,纳米颗粒的最大活性保留了80.0%以上。与天然酶相比,合成的金纳米颗粒在pH=7.0-10.0的宽pH范围内具有不依赖于pH的类酶活性,在t=23-28℃范围内具有不依赖于温度的活性。盐稳定性研究表明,它们的活性不受反应介质离子强度变化的影响。动力学结果表明,金纳米粒子的Vmax为83.3µM min-1, Km极低,仅为0.005 M。综上所述,制备的金纳米颗粒可被认为是高稳定性的纳米酶,具有较高的内在过氧化物酶活性和优异的催化效率。
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