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Atomic force microscopy of crystalline insulins: the influence of sequence variation on crystallization and interfacial structure.

机译:结晶胰岛素的原子力显微镜:序列变化对结晶和界面结构的影响。

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摘要

The self-association of proteins is influenced by amino acid sequence, molecular conformation, and the presence of molecular additives. In the presence of phenolic additives, LysB28ProB29 insulin, in which the C-terminal prolyl and lysyl residues of wild-type human insulin have been inverted, can be crystallized into forms resembling those of wild-type insulins in which the protein exists as zinc-complexed hexamers organized into well-defined layers. We describe herein tapping-mode atomic force microscopy (TMAFM) studies of single crystals of rhombohedral (R3) LysB28ProB29 that reveal the influence of sequence variation on hexamer-hexamer association at the surface of actively growing crystals. Molecular scale lattice images of these crystals were acquired in situ under growth conditions, enabling simultaneous identification of the rhombohedral LysB28ProB29 crystal form, its orientation, and its dynamic growth characteristics. The ability to obtain crystallographic parameters on multiple crystal faces with TMAFM confirmed that bovine and porcine insulins grown under these conditions crystallized into the same space group as LysB28ProB29 (R3), enabling direct comparison of crystal growth behavior and the influence of sequence variation. Real-time TMAFM revealed hexamer vacancies on the (001) terraces of LysB28ProB29, and more rounded dislocation noses and larger terrace widths for actively growing screw dislocations compared to wild-type bovine and porcine insulin crystals under identical conditions. This behavior is consistent with weaker interhexamer attachment energies for LysB28ProB29 at active growth sites. Comparison of the single crystal x-ray structures of wild-type insulins and LysB28ProB29 suggests that differences in protein conformation at the hexamer-hexamer interface and accompanying changes in interhexamer bonding are responsible for this behavior. These studies demonstrate that subtle changes in molecular conformation due to a single sequence inversion in a region critical for insulin self-association can have a significant effect on the crystallization of proteins.
机译:蛋白质的自缔合受氨基酸序列,分子构象和分子添加剂的存在的影响。在酚类添加剂的存在下,LysB28ProB29胰岛素(其中野生型人胰岛素的C末端脯氨酰基和赖氨酰基残基已被倒置)可以结晶成类似于野生型胰岛素的形式,在该形式中,蛋白质以锌-复杂的六聚物被组织成定义明确的层。我们在这里描述了菱形(R3)LysB28ProB29单晶的振型原子力显微镜(TMAFM)研究,揭示了序列变化对活跃生长的晶体表面六聚体-六聚体缔合的影响。这些晶体的分子级晶格图像是在生长条件下原位获得的,从而能够同时鉴定菱形LysB28ProB29晶体的形式,其取向及其动态生长特征。使用TMAFM在多个晶体表面上获得晶体学参数的能力证实,在这些条件下生长的牛和猪胰岛素与LysB28ProB29(R3)结晶在同一空间群中,从而可以直接比较晶体生长行为和序列变异的影响。实时TMAFM显示,与野生型牛和猪胰岛素晶体相比,在相同条件下,LysB28ProB29(001)梯田上的六聚体空位,以及更圆的位错鼻和更大的梯级宽度,可以有效地生长螺丝位错。此行为与LysB28ProB29在活性生长位点处较弱的六聚体间结合能相符。野生型胰岛素和LysB28ProB29的单晶X射线结构比较表明,六聚体-六聚体界面处蛋白质构象的差异以及六聚体间键合的伴随变化是造成这种现象的原因。这些研究表明,由于对胰岛素自缔合至关重要的区域中的单个序列倒置,分子构象中的细微变化可对蛋白质的结晶产生重大影响。

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