天青
化学
蛋白质折叠
折叠(DSP实现)
动力学
金属蛋白
结晶学
能源景观
下坡褶皱
联系方式
蛋白质结构
原籍国
生物物理学
拓扑(电路)
金属
功率因数值分析
生物化学
氧化还原
生物
物理
无机化学
工程类
有机化学
数学
电气工程
组合数学
量子力学
作者
Debanjana Das,Priya Yadav,Soumyajit Mitra,Sri Rama Koti Ainavarapu
出处
期刊:Proteins
[Wiley]
日期:2022-12-13
卷期号:91 (5): 634-648
被引量:2
摘要
Native topology is known to determine the folding kinetics and the energy landscape of proteins. Furthermore, the circular permutation (CP) of proteins alters the order of the secondary structure connectivity while retaining the three-dimensional structure, making it an elegant and powerful approach to altering native topology. Previous studies elucidated the influence of CP in proteins with different folds such as Greek key β-barrel, β-sandwich, β-α-β, and all α-Greek key. CP mainly affects the protein stability and unfolding kinetics, while folding kinetics remains mostly unaltered. However, the effect of CP on metalloproteins is yet to be elaborately studied. The active site of metalloproteins poses an additional complexity in studying protein folding. Here, we investigate a CP variant (cpN42) of azurin-in both metal-free and metal-bound (holo) forms. As observed earlier in other proteins, apo-forms of wild-type (WT) and cpN42 fold with similar rates. In contrast, zinc-binding accelerates the folding of WT but decelerates the folding of cpN42. On zinc-binding, the spontaneous folding rate of WT increases by >250 times that of cpN42, which is unprecedented and the highest for any CP to date. On the other hand, zinc-binding reduces the spontaneous unfolding rate of cpN42 by ~100 times, making the WT and CP azurins unfold at similar rates. Our study demonstrates metal binding as a novel way to modulate the unfolding and folding rates of CPs compared to their WT counterparts. We hope our study increases the understanding of the effect of CP on the folding mechanism and energy landscape of metalloproteins.
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