钙响应蛋白的序列定义结构转换

IF 4.1 2区 化学 Q2 POLYMER SCIENCE
Marina P. Chang, Winnie Huang, Gatha M. Shambharkar, Kenny M. Hernandez and Danielle J. Mai
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引用次数: 0

摘要

生物聚合物的序列决定了它们的功能,而基于蛋白质的聚合物是建立新型生物聚合物序列-功能关系的理想平台。为了有效探索天然蛋白质的巨大序列空间,序列重复是调整和放大特定功能的常用策略。这种策略被应用于具有钙响应折叠行为的重复毒素(RTX)蛋白质,它源于非肽 GGXGXDXUX 的串联重复,其中 X 可以是任何氨基酸,U 是疏水氨基酸。为了确定这种非肽的功能范围,我们改造了一种天然存在的 RTX 蛋白,这种蛋白在钙的存在下会形成 β-卷结构。序列改造的重点是重复区域内的钙结合转折点,包括非保留残基的整体置换或用共识非肽 GGAGXDTLY 的串联重复完全置换。尽管基本的非肽序列保持不变,但一些序列修饰破坏了从本质上无序的随机线圈到折叠β卷的典型过渡。富含较小的、疏水性氨基酸的蛋白质在没有钙的情况下采用二级结构,在富含钙的环境中发生结构重排。与此相反,含有体积较大的亲水性氨基酸的蛋白质在没有钙的情况下保持了固有的无序性。这些结果表明了非保留氨基酸在钙响应折叠中的重要作用,从而揭示了一种利用序列设计可调钙响应生物聚合物的策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Sequence-defined structural transitions by calcium-responsive proteins†

Sequence-defined structural transitions by calcium-responsive proteins†

Biopolymer sequences dictate their functions, and protein-based polymers are a promising platform to establish sequence–function relationships for novel biopolymers. To efficiently explore vast sequence spaces of natural proteins, sequence repetition is a common strategy to tune and amplify specific functions. This strategy is applied to repeats-in-toxin (RTX) proteins with calcium-responsive folding behavior, which stems from tandem repeats of the nonapeptide GGXGXDXUX in which X can be any amino acid and U is a hydrophobic amino acid. To determine the functional range of this nonapeptide, we modified a naturally occurring RTX protein that forms β-roll structures in the presence of calcium. Sequence modifications focused on calcium-binding turns within the repetitive region, including either global substitution of nonconserved residues or complete replacement with tandem repeats of a consensus nonapeptide GGAGXDTLY. Some sequence modifications disrupted the typical transition from intrinsically disordered random coils to folded β rolls, despite conservation of the underlying nonapeptide sequence. Proteins enriched with smaller, hydrophobic amino acids adopted secondary structures in the absence of calcium and underwent structural rearrangements in calcium-rich environments. In contrast, proteins with bulkier, hydrophilic amino acids maintained intrinsic disorder in the absence of calcium. These results indicate a significant role of nonconserved amino acids in calcium-responsive folding, thereby revealing a strategy to leverage sequences in the design of tunable, calcium-responsive biopolymers.

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来源期刊
Polymer Chemistry
Polymer Chemistry POLYMER SCIENCE-
CiteScore
8.60
自引率
8.70%
发文量
535
审稿时长
1.7 months
期刊介绍: Polymer Chemistry welcomes submissions in all areas of polymer science that have a strong focus on macromolecular chemistry. Manuscripts may cover a broad range of fields, yet no direct application focus is required.
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