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双吡啶作为β-链成核剂:从β-拱结构到自组装笼状和囊泡结构

Bispidine as a β-strand nucleator: from a β-arch to self-assembled cages and vesicles.

作者信息

Singh Hanuman, Chenna Akshay, Gangwar Upanshu, Borah Julie, Goel Gaurav, Haridas V

机构信息

Department of Chemistry, Indian Institute of Technology Delhi Hauz Khas New Delhi-110016 India

Department of Chemical Engineering, Indian Institute of Technology Delhi Hauz Khas New Delhi-110016 India

出版信息

Chem Sci. 2021 Oct 25;12(47):15757-15764. doi: 10.1039/d1sc04860k. eCollection 2021 Dec 8.

Abstract

The development of synthetic scaffolds that nucleate well-folded secondary structures is highly challenging. Herein, we designed and synthesized a series of core-modified peptides (F1, F2, F3, and F4) that fold into β-strand structures. These bispidine-scaffolded peptides were studied by CD, IR, NMR, single crystal XRD, and Molecular Dynamics (MD) simulations to investigate their conformational preferences. Solid-state and solution studies revealed that bispidine is a versatile scaffold that could be placed either at the terminal or at the middle of the peptide strand for nucleating the β-strand structure. Scaffolds that nucleate an isolated β-strand conformation are rare. Bispidine placed at the C-terminus of the peptide chain could nucleate a β-strand conformation, while bispidine placed at the middle resulted in a β-arch conformation. This nucleation activity stems from the ability to restrict the psi torsion angle () through intramolecular C5 hydrogen bonding between the equatorial hydrogen(s) of bispidine and the carbonyl oxygen(s) of the amino acid close to the scaffold. Furthermore, the bispidine peptidomimetic with a super secondary structure, namely β-arch, assembled into single-hole submicron cages and spherical vesicles as evident from microscopic studies. The design logic defined here will be a significant strategy for the development of β-strand mimetics and super secondary structures.

摘要

开发能够使二级结构良好折叠成核的合成支架极具挑战性。在此,我们设计并合成了一系列折叠成β-链结构的核心修饰肽(F1、F2、F3和F4)。通过圆二色光谱(CD)、红外光谱(IR)、核磁共振(NMR)、单晶X射线衍射(XRD)和分子动力学(MD)模拟对这些联吡啶支架肽进行了研究,以探究它们的构象偏好。固态和溶液研究表明,联吡啶是一种通用的支架,可置于肽链的末端或中间以促使β-链结构成核。能够使孤立的β-链构象成核的支架很少见。置于肽链C末端的联吡啶能够促使β-链构象成核,而置于中间的联吡啶则导致形成β-拱结构。这种成核活性源于通过联吡啶的赤道氢与靠近支架的氨基酸的羰基氧之间的分子内C5氢键来限制ψ扭转角()的能力。此外,具有超二级结构即β-拱的联吡啶拟肽组装成了单孔亚微米笼和球形囊泡,这从显微镜研究中可以明显看出。这里定义的设计逻辑将是开发β-链模拟物和超二级结构的一项重要策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9da5/8654037/8c684e9baa92/d1sc04860k-f1.jpg

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