Equilibrium amide hydrogen exchange and protein folding kinetics

被引:0
|
作者
Yawen Bai
机构
[1] National Cancer Institute,Laboratory of Biochemistry
[2] NIH,undefined
来源
Journal of Biomolecular NMR | 1999年 / 15卷
关键词
EX1 and EX2 exchange behaviors; hydrogen exchange; protein dynamics; protein folding kinetics; protein folding pathway;
D O I
暂无
中图分类号
学科分类号
摘要
The classical Linderstrøm-Lang hydrogen exchange (HX) model is extended to describe the relationship between the HX behaviors (EX1 and EX2) and protein folding kinetics for the amide protons that can only exchange by global unfolding in a three-state system including native (N), intermediate (I), and unfolded (U) states. For these slowly exchanging amide protons, it is shown that the existence of an intermediate (I) has no effect on the HX behavior in an off-pathway three-state system (I↔U↔N). On the other hand, in an on-pathway three-state system (U↔I↔N), the existence of a stable folding intermediate has profound effect on the HX behavior. It is shown that fast refolding from the unfolded state to the stable intermediate state alone does not guarantee EX2 behavior. The rate of refolding from the intermediate state to the native state also plays a crucial role in determining whether EX1 or EX2 behavior should occur. This is mainly due to the fact that only amide protons in the native state are observed in the hydrogen exchange experiment. These new concepts suggest that caution needs to be taken if one tries to derive the kinetic events of protein folding from equilibrium hydrogen exchange experiments.
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页码:65 / 70
页数:5
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