Department of Cell Biology, Microbiology and Molecular Biology, University of South Florida, Tampa, FL 33620, USA; Center for Drug Discovery and Innovation, University of South Florida, Tampa, FL 33612, USA.
Instituto de Investigaciones Biotecnológicas IIB-INTECH, Universidad Nacional de San Martín, Buenos Aires, CP1650, Argentina.
J Mol Biol. 2018 Aug 3;430(16):2389-2402. doi: 10.1016/j.jmb.2018.05.045. Epub 2018 Jun 8.
The relationship between helical stability and binding affinity was examined for the intrinsically disordered transactivation domain of the myeloblastosis oncoprotein, c-Myb, and its ordered binding partner, KIX. A series of c-Myb mutants was designed to either increase or decrease helical stability without changing the binding interface with KIX. This included a complimentary series of A, G, P, and V mutants at three non-interacting sites. We were able to use the glycine mutants as a reference state and show a strong correlation between binding affinity and helical stability. The intrinsic helicity of c-Myb is 21%, and helicity values of the mutants ranged from 8% to 28%. The c-Myb helix is divided into two conformationally distinct segments. The N-terminal segment, from K291-L301, has an average helicity greater than 60% and the C-terminal segment, from S304-L315, has an average helicity less than 10%. We observed different effects on binding when these two segments were mutated. Mutants in the N-terminal segment that increased helicity had no effect on the binding affinity to KIX, while helix destabilizing glycine and proline mutants reduced binding affinity by more than 1 kcal/mol. Mutants that either increased or decreased helical stability in the C-terminal segment had almost no effect on binding. However, several of the mutants reveal the presence of multiple conformations accessible in the bound state based on changes in enthalpy and linkage analysis of binding free energies. These results may explain the high level of sequence identity (>90%), even at non-interacting sites, for c-Myb homologues.
我们研究了髓性细胞瘤致癌蛋白 c-Myb 的无规则伸展转激活结构域与其有序结合伴侣 KIX 之间的螺旋稳定性和结合亲和力的关系。设计了一系列 c-Myb 突变体,这些突变体或增加或降低螺旋稳定性而不改变与 KIX 的结合界面。这包括在三个非相互作用的位点设计互补的 A、G、P 和 V 突变体系列。我们能够使用甘氨酸突变体作为参考状态,并显示出结合亲和力与螺旋稳定性之间的强相关性。c-Myb 的固有螺旋度为 21%,突变体的螺旋度值范围为 8%至 28%。c-Myb 螺旋分为两个构象上明显不同的片段。N 端片段(K291-L301)的平均螺旋度大于 60%,C 端片段(S304-L315)的平均螺旋度小于 10%。当这两个片段发生突变时,我们观察到对结合的不同影响。增加螺旋度的 N 端片段突变体对与 KIX 的结合亲和力没有影响,而螺旋去稳定的甘氨酸和脯氨酸突变体使结合亲和力降低超过 1kcal/mol。增加或降低 C 端片段螺旋稳定性的突变体对结合几乎没有影响。然而,根据结合自由能的焓变和键合分析,一些突变体揭示了在结合状态下可获得的多种构象的存在。这些结果可能解释了 c-Myb 同源物在非相互作用位点具有高序列同一性(>90%)的原因。