用于构建随机线圈和折叠状态下异质骨架蛋白模拟物的人工单体的化学位移。

IF 1.5 4区 生物学 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY
Peptide Science Pub Date : 2023-03-01 Epub Date: 2022-11-12 DOI:10.1002/pep2.24297
Shilpa R Rao, Thomas W Harmon, Shelby L Heath, Jacob A Wolfe, Jacqueline R Santhouse, Gregory L O'Brien, Alexis N Distefano, Zachary E Reinert, W Seth Horne
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引用次数: 0

摘要

构建蛋白质大小的合成链,将天然氨基酸与人造单体混合在一起,形成所谓的异质骨,是利用生物启发剂产生复杂折叠和功能的有力方法。结构生物学中常用于研究天然蛋白质的各种技术已被用于研究这些实体的折叠。在蛋白质的核磁共振表征中,质子化学位移是一种可直接获取的、信息丰富的指标,可直接反映与折叠相关的各种特性。利用化学位移深入了解折叠需要一组参考化学位移值,这些值对应于随机线圈状态下的每种构件类型(即天然蛋白质中的 20 个典型氨基酸),还需要了解与特定折叠构象相关的化学位移的系统性变化。虽然对天然蛋白质有详细记载,但这些问题在蛋白质模拟物中仍未得到探讨。在此,我们报告了常用于构建异质骨架蛋白类似物的人工氨基酸单体库的随机线圈化学位移值,以及与一类单体(带有蛋白源侧链、采用螺旋折叠构象的β3-残基)相关的光谱特征。总之,这些结果将有助于继续利用核磁共振研究类蛋白人工骨的结构和动力学。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Chemical Shifts of Artificial Monomers Used to Construct Heterogeneous-Backbone Protein Mimetics in Random Coil and Folded States.

Chemical Shifts of Artificial Monomers Used to Construct Heterogeneous-Backbone Protein Mimetics in Random Coil and Folded States.

The construction of protein-sized synthetic chains that blend natural amino acids with artificial monomers to create so-called heterogeneous-backbones is a powerful approach to generate complex folds and functions from bio-inspired agents. A variety of techniques from structural biology commonly used to study natural proteins have been adapted to investigate folding in these entities. In NMR characterization of proteins, proton chemical shift is a straightforward to acquire, information-rich metric that bears directly on a variety of properties related to folding. Leveraging chemical shift to gain insight into folding requires a set of reference chemical shift values corresponding to each building block type (i.e., the 20 canonical amino acids in the case of natural proteins) in a random coil state and knowledge of systematic changes in chemical shift associated with particular folded conformations. Although well documented for natural proteins, these issues remain unexplored in the context of protein mimetics. Here, we report random coil chemical shift values for a library of artificial amino acid monomers frequently used to construct heterogeneous-backbone protein analogues as well as a spectroscopic signature associated with one monomer class, β3-residues bearing proteinogenic side chains, adopting a helical folded conformation. Collectively, these results will facilitate the continued utilization of NMR for the study of structure and dynamics in protein-like artificial backbones.

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来源期刊
Peptide Science
Peptide Science Biochemistry, Genetics and Molecular Biology-Biophysics
CiteScore
5.20
自引率
4.20%
发文量
36
期刊介绍: The aim of Peptide Science is to publish significant original research papers and up-to-date reviews covering the entire field of peptide research. Peptide Science provides a forum for papers exploring all aspects of peptide synthesis, materials, structure and bioactivity, including the use of peptides in exploring protein functions and protein-protein interactions. By incorporating both experimental and theoretical studies across the whole spectrum of peptide science, the journal serves the interdisciplinary biochemical, biomaterials, biophysical and biomedical research communities. Peptide Science is the official journal of the American Peptide Society.
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