Cho Jae-Hyun, Raleigh Daniel P
Graduate Program in Biochemistry and Structural Biology, State University of New York at Stony Brook, Stony Brook, NY 11794-3400, USA.
J Mol Biol. 2005 Oct 14;353(1):174-85. doi: 10.1016/j.jmb.2005.08.019.
The nature of the denatured state ensemble has been controversial for decades owing, in large part, to the difficulty in characterizing the structure and energetics of denatured state interactions. There is increasing evidence for relatively non-specific hydrophobic clustering in the denatured states of some proteins but other types of interactions are much less well characterized. Here, we report the characterization of highly specific electrostatic interactions in the denatured state of a small alpha-beta protein, the N-terminal domain of the ribosomal protein L9 (NTL9). Mutation of Lys12 to Met has been shown to increase the stability of NTL9 significantly through the disruption of denatured state interactions. Here, we describe the analysis of the pH-dependent stability of 13 mutants designed to probe the nature of the Lys12 denatured state interaction. Lys12 is located in a lysine-rich region of the protein but analysis of a set of Lys to Met mutants shows that it plays a unique role in the denatured state. Analysis of mutants of all of the acidic residues in NTL9 shows that Lys12 forms a specific non-native electrostatic interaction with Asp8 in the denatured state ensemble. Thus the distribution of charge-charge interactions in the denatured state ensemble of NTL9 appears to be biased by few key interactions and is very different from that expected in a random coil. We propose that these interactions are not encoded by local sequence effects but rather reflect interactions among residues more distant in sequence. These results demonstrate that electrostatic as well as hydrophobic interactions can play an important role in the denatured state ensemble.
几十年来,变性状态集合体的性质一直存在争议,这在很大程度上是由于难以表征变性状态相互作用的结构和能量学。越来越多的证据表明,在一些蛋白质的变性状态中存在相对非特异性的疏水簇集,但其他类型的相互作用则了解得少得多。在此,我们报告了对一种小α-β蛋白——核糖体蛋白L9的N端结构域(NTL9)变性状态中高度特异性静电相互作用的表征。已表明,将Lys12突变为Met可通过破坏变性状态相互作用显著提高NTL9的稳定性。在此,我们描述了对13个突变体pH依赖性稳定性的分析,这些突变体旨在探究Lys12变性状态相互作用的性质。Lys12位于该蛋白富含赖氨酸的区域,但对一组Lys到Met突变体的分析表明,它在变性状态中发挥着独特作用。对NTL9中所有酸性残基突变体的分析表明,Lys12在变性状态集合体中与Asp8形成了特定的非天然静电相互作用。因此,NTL9变性状态集合体中电荷-电荷相互作用的分布似乎受到少数关键相互作用的影响,与随机卷曲中预期的情况非常不同。我们提出,这些相互作用不是由局部序列效应编码的,而是反映了序列中距离更远的残基之间的相互作用。这些结果表明,静电相互作用以及疏水相互作用在变性状态集合体中都可以发挥重要作用。