Non-fibril amyloid aggregation at the air/water interface: self-adaptive pathway resulting in a 2D Janus nanofilm

杰纳斯 淀粉样纤维 纤维 生物物理学 淀粉样蛋白(真菌学) 接口(物质) 化学 材料科学 淀粉样β 化学物理 纳米技术 接触角 生物 复合材料 医学 无机化学 疾病 病理 坐滴法
作者
Hao Ren,Huan Chen,Yu Kang,Wei Liu,Yongchun Liu,Fei Tao,Shuting Miao,Yingying Zhang,Qian Liu,Mingdong Dong,Yonggang Liu,Bing Liu,Peng Yang
出处
期刊:Chemical Science [Royal Society of Chemistry]
卷期号:15 (23): 8946-8958 被引量:26
标识
DOI:10.1039/d4sc00560k
摘要

The amyloid states of proteins are implicated in several neurodegenerative diseases and bioadhesion processes. However, the classical amyloid fibrillization mechanism fails to adequately explain the formation of polymorphic aggregates and their adhesion to various surfaces. Herein, we report a non-fibril amyloid aggregation pathway, with disulfide-bond-reduced lysozyme (R-Lyz) as a model protein under quasi-physiological conditions. Very different from classical fibrillization, this pathway begins with the air-water interface (AWI) accelerated oligomerization of unfolded full-length protein, resulting in unique plate-like oligomers with self-adaptive ability, which can adjust their conformations to match various interfaces such as the asymmetric AWI and amyloid-protein film surface. The pathway enables a stepwise packing of the plate-like oligomers into a 2D Janus nanofilm, exhibiting a divergent distribution of hydrophilic/hydrophobic residues on opposite sides of the nanofilm. The resulting Janus nanofilm possesses a top-level Young's modulus (8.3 ± 0.6 GPa) among amyloid-based materials and exhibits adhesive strength two times higher (145 ± 81 kPa) than that of barnacle cement. Furthermore, we found that such an interface-directed pathway exists in several amyloidogenic proteins with a similar self-adaptive 2D-aggregation process, including bovine serum albumin, insulin, fibrinogen, hemoglobin, lactoferrin, and ovalbumin. Thus, our findings on the non-fibril self-adaptive mechanism for amyloid aggregation may shed light on polymorphic amyloid assembly and their adhesions through an alternative pathway.
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