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合成囊泡中曲率形成的机制洞察。

Mechanistic Insights into Curvature Formation in Synthetic Vesicles.

作者信息

Cook Alexander B

机构信息

Department of Chemistry & Chemical Engineering, Institute for Complex Molecular Systems, Bio-Organic Chemistry, Eindhoven University of Technology, Helix, P.O. Box 513, 5600MB, Eindhoven, The, Netherlands.

出版信息

Angew Chem Int Ed Engl. 2024 Nov 25;63(48):e202408568. doi: 10.1002/anie.202408568. Epub 2024 Oct 8.

Abstract

The mimicking of natural lipid bilayers with synthetic amphiphilic systems is of great interest to researchers, as insights could lead to better understanding of the complexities of cell membranes, as well as new materials and healthcare technologies. Recapitulating natural lipid asymmetry across bilayer membranes has important implications for curvature in cell, vesicle, and organelle morphologies, but has been challenging to achieve with synthetic lipid combinations or standard amphiphilic block copolymers. In a recent article, Elizebath et al. report the synthesis of a new type of synthetic amphiphile able to induce asymmetry in an artificial bilayer membrane dynamically. The molecules were designed around an extended π-conjugated hydrophobic core with tertiary amine-terminated oxyalkylene side chains. Protonation of the tertiary amines on the bilayer exterior leads to curvature induction, bilayer fission, and vesicle formation as monitored by time-resolved spectroscopy techniques and microscopy. The results were further validated with density functional theory (DFT) calculations. The delicate balance between different molecular scale interactions in the supramolecular structures led to the dynamic transformation of the bilayer membranes. Insights described could be used to advance the assembly of hierarchical life-like materials.

摘要

利用合成两亲系统模拟天然脂质双层膜引起了研究人员的极大兴趣,因为这有助于深入了解细胞膜的复杂性,以及开发新材料和医疗技术。在双层膜上重现天然脂质不对称性对于细胞、囊泡和细胞器形态的曲率具有重要意义,但使用合成脂质组合或标准两亲嵌段共聚物来实现这一点具有挑战性。在最近的一篇文章中,伊丽莎白等人报道了一种新型合成两亲物的合成,该两亲物能够在人工双层膜中动态诱导不对称性。这些分子围绕一个带有叔胺端基氧化烯侧链的扩展π共轭疏水核心设计。通过时间分辨光谱技术和显微镜监测发现,双层膜外部叔胺的质子化会导致曲率诱导、双层裂变和囊泡形成。结果通过密度泛函理论(DFT)计算进一步验证。超分子结构中不同分子尺度相互作用之间的微妙平衡导致了双层膜的动态转变。所描述的见解可用于推进分层类生命材料的组装。

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