化学
反平行(数学)
纤维
微型多孔材料
氢键
硫黄素
结晶学
测试表
谷氨酸
蛋白质二级结构
侧链
PLGA公司
酰胺
立体化学
氨基酸
蛋白质结构
有机化学
聚合物
分子
生物化学
物理
磁场
病理
医学
体外
量子力学
阿尔茨海默病
疾病
作者
Yudai Yamaoki,Hiroshi Imamura,Aleksandra Fulara,Sławomir Wójcik,Łukasz Bożycki,Minoru Katō,Timothy A. Keiderling,Wojciech Dzwolak
摘要
Under favorable conditions of pH and temperature, poly(l-glutamic acid) (PLGA) adopts different types of secondary and quaternary structures, which include spiral assemblies of amyloid-like fibrils. Heating of acidified solutions of PLGA (or PDGA) triggers formation of β₂-type aggregates with morphological and tinctorial properties typical for amyloid fibrils. In contrast to regular antiparallel β-sheet (β₁), the amide I′ vibrational band of β₂-fibrils is unusually red-shifted below 1600 cm–¹, which has been attributed to bifurcated hydrogen bonds coupling CO and N–D groups of the main chains to glutamic acid side chains. However, unlike for pure PLGA, the amide I′ band of aggregates precipitating from racemic mixtures of PLGA and PDGA (β₁) is dominated by components at 1613 and 1685 cm–¹typically associated with intermolecular antiparallel β-sheets. The coaggregation of PLGA and PDGA chains is slower and biphasic and leads to less-structured assemblies of fibrils, which is reflected in scanning electron microscopy images, sedimentation properties, and fluorescence intensity after staining with thioflavin T. The β₁-type aggregates are metastable, and they slowly convert to fibrils with the infrared characteristics of β₂-type fibrils. The process is dramatically accelerated under high pressure. This implies the presence of void volumes within structural defects in racemic aggregates, preventing the precise alignment of main and side chains necessary to zip up ladders of bifurcated hydrogen bonds. As thermodynamic costs associated with maintaining void volumes within the racemic aggregate increase under high pressure, a hyperbaric treatment of misaligned chains leads to rectifying the packing defects and formation of the more compact form of fibrils.
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