Gage Matthew J, Zak Jennifer L, Robinson Anne Skaja
259 Colburn Laboratory, Department of Chemical Engineering, University of Delaware, Newark, DE 19716, USA.
Protein Sci. 2005 Sep;14(9):2333-43. doi: 10.1110/ps.051394605. Epub 2005 Aug 4.
The P22 tailspike protein folds by forming a folding competent monomer species that forms a dimeric, then a non-native trimeric (protrimer) species by addition of folding competent monomers. We have found three residues, R549, R563, and D572, which play a critical role in both the stability of the native tailspike protein and assembly and maturation of the protrimer. King and colleagues reported previously that substitution of R563 to glutamine inhibited protrimer formation. We now show that the R549Q and R563K variants significantly delay the protrimer-to-trimer transition both in vivo and in vitro. Previously, variants that destabilize intermediates have shown wild-type chemical stability. Interestingly, both the R549Q and R563K variants destabilize the tailspike trimer in guanidine denaturation studies, indicating that they represent a new class of tailspike folding variants. R549Q has a midpoint of unfolding at 3.2M guanidine, compared to 5.6M for the wild-type tailspike protein, while R563K has a midpoint of unfolding of 1.8 M. R549Q and R563K also denature over a broader pH range than the wild-type tailspike protein and both proteins have increased sensitivity to pH during refolding, suggesting that both residues are involved in ionic interactions. Our model is that R563 and D572 interact to stabilize the adjacent turn, aiding the assembly of the dimer and protrimer species. We believe that the interaction between R563 and D572 is also critical following assembly of the protrimer to properly orient D572 in order to form a salt bridge with R549 during protrimer maturation.
P22尾刺蛋白通过形成一种具有折叠能力的单体物种进行折叠,该单体物种通过添加具有折叠能力的单体形成二聚体,然后形成非天然三聚体(前三聚体)物种。我们发现了三个残基,R549、R563和D572,它们在天然尾刺蛋白的稳定性以及前三聚体的组装和成熟过程中都起着关键作用。金及其同事之前报道,将R563替换为谷氨酰胺会抑制前三聚体的形成。我们现在表明,R549Q和R563K变体在体内和体外都显著延迟了前三聚体向三聚体的转变。此前,使中间体不稳定的变体表现出野生型化学稳定性。有趣的是,在胍变性研究中,R549Q和R563K变体都使尾刺三聚体不稳定,这表明它们代表了一类新的尾刺折叠变体。R549Q在3.2M胍中的解折叠中点,而野生型尾刺蛋白为5.6M,而R563K的解折叠中点为1.8M。R549Q和R563K在比野生型尾刺蛋白更宽的pH范围内变性,并且两种蛋白在重折叠过程中对pH的敏感性增加,这表明这两个残基都参与离子相互作用。我们的模型是,R563和D572相互作用以稳定相邻的转角,有助于二聚体和前三聚体物种的组装。我们认为,在组装前三聚体后,R563和D572之间的相互作用对于在适当的方向上定位D572也至关重要,以便在前三聚体成熟过程中与R549形成盐桥。