Key Laboratory of Aquatic Botany and Watershed Ecology, Wuhan Botanical Garden and Center for Plant Ecology, Core Botanical Gardens, Chinese Academy of Sciences, Wuhan, 430074, China.
Aix Marseille Univ, CNRS, BIP UMR 7281, 31 Chemin Joseph Aiguier, Marseille Cedex 20, 13402, France.
Small. 2019 Jul;15(27):e1900860. doi: 10.1002/smll.201900860. Epub 2019 May 21.
Widely used silver nanoparticles (AgNPs) are readily accessible to biological fluids and then surrounded by proteins. However, interactions between AgNPs and proteins are poorly understood. Two dehydrogenases, glyceraldehyde-3-phosphate dehydrogenase (GAPDH) and malate dehydrogenase (MDH), are chosen to investigate these interactions. Ag bound to thiol groups of these enzymes significantly decreases the number of free thiols available. Dose-dependent inhibition of enzyme activities is observed in both AgNPs and Ag treatments. Based on the concentration required to inhibit 50% activity, GAPDH and MDH are 24-30 fold more sensitive to Ag than to AgNPs suggesting that the measured 4.2% Ag containing AgNPs can be responsible for the enzymes inhibition. GAPDH, with a thiol group in its active site, is more sensitive to Ag than MDH, displaying many thiol groups but none in its active site, suggesting that thiol groups at the active site strongly determines the sensitivity of enzymes toward AgNPs. In contrast, the dramatic changes of circular dichroism spectra show that the global secondary structure of MDH under AgNPs treatment is more altered than that of GAPDH. In summary, this study shows that the thiol groups and their location on these dehydrogenases are crucial for the AgNPs effects.
广泛使用的银纳米粒子 (AgNPs) 很容易进入生物流体,然后被蛋白质包围。然而,AgNPs 与蛋白质之间的相互作用还知之甚少。选择两种脱氢酶,甘油醛-3-磷酸脱氢酶 (GAPDH) 和苹果酸脱氢酶 (MDH) 来研究这些相互作用。与这些酶的巯基结合的 Ag 显著降低了可用的游离巯基数量。在 AgNPs 和 Ag 处理中都观察到酶活性的剂量依赖性抑制。根据抑制 50%活性所需的浓度,GAPDH 和 MDH 对 Ag 的敏感性比 AgNPs 高 24-30 倍,这表明测量到的含有 4.2%Ag 的 4.2%AgNPs 可能是导致酶抑制的原因。具有活性部位巯基的 GAPDH 比 MDH 对 Ag 更敏感,尽管 MDH 显示出许多巯基,但没有一个在其活性部位,这表明活性部位的巯基强烈决定了酶对 AgNPs 的敏感性。相比之下,圆二色光谱的剧烈变化表明,在 AgNPs 处理下 MDH 的全局二级结构比 GAPDH 更易发生变化。总之,这项研究表明,这些脱氢酶上的巯基及其位置对于 AgNPs 的影响至关重要。