Koo Bon W, Hebda James A, Miranker Andrew D
Department of Molecular Biophysics and Biochemistry, Yale University, New Haven, CT 06520-8114, USA.
Protein Eng Des Sel. 2008 Mar;21(3):147-54. doi: 10.1093/protein/gzm076.
Amyloid fibers are aggregated, yet highly ordered, beta-sheet-rich assemblies of misfolded proteins. Order is established in such systems following profiles indicative of nucleation-dependent assembly. Nucleation dependence suggests that specific interactions, such as long-range contacts and/or strand registration, are critical to establishing initial fiber structure. Here, we show that amino acids at selected positions participate in key interactions that modulate the pathway of amyloid fiber formation by the hormone, islet amyloid polypeptide (IAPP). Specifically, we investigated the role of amide side-chain interactions in the process of IAPP assembly. We mutated five of the asparagine side chains in IAPP and assessed their effects on the kinetics of assembly. We find that the asparagine amide side chains strongly dictate the ability of IAPP to form fibers. In particular, the elimination of two specific asparagines results in near and total loss of amyloid, respectively. Interestingly, the two asparagines are located in a recently identified domain with alpha-helical bias. These sensitivities are unusual for IAPP, as IAPP is generally tolerant to mutation. Here, we demonstrate this mutational tolerance by assessing 10 alterations at five distinct sites. In all cases, the constructs form fibers on timescales perturbed by less than a factor of two compared with wild-type protein. These findings indicate the presence of key specific interactions that are the determinants of IAPP amyloid formation.
淀粉样纤维是错误折叠蛋白质的聚集但高度有序、富含β-折叠的聚集体。在这类系统中,按照成核依赖性组装的特征建立起有序结构。成核依赖性表明特定相互作用,如长程接触和/或链对齐,对于建立初始纤维结构至关重要。在此,我们表明选定位置的氨基酸参与关键相互作用,这些相互作用通过激素胰岛淀粉样多肽(IAPP)调节淀粉样纤维形成的途径。具体而言,我们研究了酰胺侧链相互作用在IAPP组装过程中的作用。我们对IAPP中的五个天冬酰胺侧链进行了突变,并评估了它们对组装动力学的影响。我们发现天冬酰胺酰胺侧链强烈决定IAPP形成纤维的能力。特别是,去除两个特定的天冬酰胺分别导致淀粉样蛋白几乎完全丧失和完全丧失。有趣的是,这两个天冬酰胺位于最近确定的具有α-螺旋倾向的结构域中。这些敏感性对于IAPP来说是不寻常的,因为IAPP通常对突变具有耐受性。在此,我们通过评估五个不同位点的10种改变来证明这种突变耐受性。在所有情况下,与野生型蛋白质相比,构建体在时间尺度上形成纤维的时间仅受到不到两倍的干扰。这些发现表明存在关键的特定相互作用,这些相互作用是IAPP淀粉样形成的决定因素。