Ibarra-Molero Beatriz, Zitzewitz Jill A, Matthews C Robert
Department of Biochemistry and Molecular Pharmacology, University of Massachusetts Medical School, Worcester, MA 01605, USA.
J Mol Biol. 2004 Mar 5;336(5):989-96. doi: 10.1016/j.jmb.2003.12.069.
Double mutant cycle analysis was employed to ascertain the role of intra- and interchain salt-bridges in the folding and stability of the dimeric coiled-coil peptide, GCN4-p1, the 33-residue leucine zipper domain of the transcriptional activator GCN4. Equilibrium circular dichroism studies of the urea-induced unfolding reaction at neutral pH revealed that both types of ionic interactions, localized primarily in the N-terminal portion of the molecule, enhance the stability of the native coiled-coil. By contrast, comparable stopped-flow circular dichroism studies indicate that the salt-bridge interactions, with one possible exception, are not well formed in the transition state for folding. Although the E22Q/R25A double mutant failed to fold, fragmentation studies suggest that the E22/R25 intramolecular salt-bridge may play a critical role in stabilizing C-terminal nascent helices that drive the association reaction. The remaining salt-bridges appear to stabilize the parallel-stranded coiled-coil architecture of GCN4-p1 only after the peptide traverses the rate-limiting, dimeric transition state.
采用双突变循环分析来确定链内和链间盐桥在二聚卷曲螺旋肽GCN4-p1(转录激活因子GCN4的33个残基的亮氨酸拉链结构域)折叠和稳定性中的作用。中性pH下尿素诱导的去折叠反应的平衡圆二色性研究表明,这两种类型的离子相互作用主要位于分子的N端部分,增强了天然卷曲螺旋的稳定性。相比之下,类似的停流圆二色性研究表明,除了一个可能的例外,盐桥相互作用在折叠的过渡态中并未很好地形成。尽管E22Q/R25A双突变体未能折叠,但片段化研究表明,E22/R25分子内盐桥可能在稳定驱动缔合反应的C端新生螺旋中起关键作用。其余的盐桥似乎仅在肽穿过限速的二聚体过渡态后才稳定GCN4-p1的平行链卷曲螺旋结构。