Fawzi Nicolas Lux, Kohlstedt Kevin L, Okabe Yuka, Head-Gordon Teresa
UCSF/UCB Joint Graduate Group in Bioengineering, Berkeley, California 94720, USA.
Biophys J. 2008 Mar 15;94(6):2007-16. doi: 10.1529/biophysj.107.121467. Epub 2007 Nov 21.
Using a coarse-grained model of the Abeta peptide, we analyze the Arctic (E22G), Dutch (E22Q), and Flemish (A21G) familial Alzheimer's disease (FAD) mutants for any changes in the stability of amyloid assemblies with respect to the wild-type (WT) sequence. Based on a structural reference state of two protofilaments aligned to create the "agitated" protofibril as determined by solid-state NMR, we determine free energy trends for Abeta assemblies for the WT and FAD familial sequences. We find that the structural characteristics and oligomer size of the critical nucleus vary dramatically among the hereditary mutants. The Arctic mutant's disorder in the turn region introduces new stabilizing interactions that better align the two protofilaments, yielding a well-defined protofibril axis at relatively small oligomer sizes with respect to WT. By contrast, the critical nucleus for the Flemish mutant is beyond the 20 chains characterized in this study, thereby showing a strong shift in the equilibrium toward monomers with respect to larger protofibril assemblies. The Dutch mutant forms more ordered protofilaments than WT, but exhibits greater disorder in protofibril structure that includes an alternative polymorph of the WT fibril. An important conclusion of this work is that the Dutch mutant does not support the agitated protofibril assembly. We discuss the implications of the structural ensembles and free energy profiles for the FAD mutants in regards to interpretation of the kinetics of fibril assembly using chromatography and dye-binding experiments.
我们使用β-淀粉样蛋白肽的粗粒度模型,分析了北极型(E22G)、荷兰型(E22Q)和佛兰芒型(A21G)家族性阿尔茨海默病(FAD)突变体,以研究淀粉样聚集体相对于野生型(WT)序列在稳定性方面的任何变化。基于通过固态核磁共振确定的两条原纤维对齐形成“搅动”原纤维的结构参考状态,我们确定了野生型和FAD家族序列的β-淀粉样蛋白聚集体的自由能趋势。我们发现,关键核的结构特征和寡聚体大小在遗传性突变体之间有很大差异。北极型突变体在转角区域的无序性引入了新的稳定相互作用,使两条原纤维更好地对齐,相对于野生型,在相对较小的寡聚体大小时就产生了明确的原纤维轴。相比之下,佛兰芒型突变体的关键核超出了本研究中表征的20条链,因此相对于较大的原纤维聚集体,其平衡向单体有强烈偏移。荷兰型突变体形成的原纤维比野生型更有序,但在原纤维结构中表现出更大的无序性,包括野生型纤维的一种替代多晶型。这项工作的一个重要结论是,荷兰型突变体不支持搅动原纤维组装。我们讨论了结构集合和自由能分布对FAD突变体的影响,涉及使用色谱法和染料结合实验对纤维组装动力学的解释。