Yang Dan, Fan Junhe, Cao Fengyi, Deng Zuojun, Pojman John A, Ji Lin
Department of Chemistry, Capital Normal University Beijing 100048 China
Department of Chemistry, Louisiana State University Baton Rouge 70803 USA.
RSC Adv. 2019 Jan 25;9(7):3514-3519. doi: 10.1039/c8ra09244c.
The bell-shaped reactivity-pH curve is the fundamental reason that the temporal programmable kinetic switch in clock reactions can be obtained in bio-competitive enzymatic reactions. In this work, urease was loaded on small resin particles through ionic binding. Experimental results reveal that the immobilization not only increased the stability of the enzyme and the reproducibility of the clock reaction, but also shifted the bell-shaped activity curve to lower pHs. The latter change enables the clock reaction to occur from an initial pH of 2.3, where the free enzyme had already lost its activity. Two mechanisms explain the influence of the immobilization on the clock reaction. Immobilization modified the pH sensitive functional groups on the enzyme, shifting the activity curve to a more acidic region, and reduced diffusion alters the enzyme dynamics.
钟形反应性 - pH 曲线是在生物竞争性酶促反应中能够获得时钟反应中的时间可编程动力学开关的根本原因。在这项工作中,脲酶通过离子结合负载在小树脂颗粒上。实验结果表明,固定化不仅提高了酶的稳定性和时钟反应的可重复性,还将钟形活性曲线向更低的pH值移动。后一种变化使得时钟反应能够从初始pH值2.3开始发生,而在该pH值下游离酶已经失去了活性。有两种机制解释固定化对时钟反应的影响。固定化修饰了酶上对pH敏感的官能团,将活性曲线移至更酸性的区域,并且减少的扩散改变了酶的动力学。