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对称蛋白质支架的功能化:冗余的折叠核和替代的寡聚折叠途径。

Functionalization of a symmetric protein scaffold: Redundant folding nuclei and alternative oligomeric folding pathways.

机构信息

Department of Biomedical Sciences, Florida State University, Tallahassee, Florida, USA.

出版信息

Protein Sci. 2022 May;31(5):e4301. doi: 10.1002/pro.4301.

DOI:10.1002/pro.4301
PMID:35481645
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8996475/
Abstract

Successful de novo protein design ideally targets specific folding kinetics, stability thermodynamics, and biochemical functionality, and the simultaneous achievement of all these criteria in a single step design is challenging. Protein design is potentially simplified by separating the problem into two steps: (a) an initial design of a protein "scaffold" having appropriate folding kinetics and stability thermodynamics, followed by (b) appropriate functional mutation-possibly involving insertion of a peptide functional "cassette." This stepwise approach can also separate the orthogonal effects of the "stability/function" and "foldability/function" tradeoffs commonly observed in protein design. If the scaffold is a protein architecture having an exact rotational symmetry, then there is the potential for redundant folding nuclei and multiple equivalent sites of functionalization; thereby enabling broader functional adaptation. We describe such a "scaffold" and functional "cassette" design strategy applied to a β-trefoil threefold symmetric architecture and a heparin ligand functionality. The results support the availability of redundant folding nuclei within this symmetric architecture, and also identify a minimal peptide cassette conferring heparin affinity. The results also identify an energy barrier of destabilization that switches the protein folding pathway from monomeric to trimeric, thereby identifying another potential advantage of symmetric protein architecture in de novo design.

摘要

理想情况下,从头设计蛋白质的目标是特定的折叠动力学、稳定性热力学和生化功能,而在单个设计步骤中同时实现所有这些标准是具有挑战性的。通过将问题分成两个步骤,蛋白质设计可以得到简化:(a)具有适当折叠动力学和稳定性热力学的蛋白质“支架”的初始设计,然后是(b)适当的功能突变——可能涉及插入肽功能“盒”。这种分步方法还可以分离在蛋白质设计中常见的“稳定性/功能”和“折叠能力/功能”权衡的正交效应。如果支架是具有精确旋转对称性的蛋白质结构,则有可能存在冗余折叠核和多个等效的功能化位点;从而实现更广泛的功能适应。我们描述了这种“支架”和功能“盒”设计策略应用于β-三叶形三倍对称结构和肝素配体功能。结果支持在这种对称结构中存在冗余折叠核,并确定了赋予肝素亲和力的最小肽盒。结果还确定了一个失稳能垒,该能垒将蛋白质折叠途径从单体转换为三聚体,从而确定了对称蛋白质结构在从头设计中的另一个潜在优势。

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本文引用的文献

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Protein Sci. 2021 Nov;30(11):2287-2297. doi: 10.1002/pro.4192. Epub 2021 Oct 6.
2
Conserved buried water molecules enable the β-trefoil architecture.保守的埋藏水分子使 β-三叶型结构得以形成。
Protein Sci. 2020 Aug;29(8):1794-1802. doi: 10.1002/pro.3899. Epub 2020 Jul 8.
3
Oligomerization of a symmetric β-trefoil protein in response to folding nucleus perturbation.对称β-三叶因子蛋白在折叠核扰动下的寡聚化。
Protein Sci. 2020 Jul;29(7):1629-1640. doi: 10.1002/pro.3877. Epub 2020 May 25.
4
Synthetic biology principles for the design of protein with novel structures and functions.合成生物学原理设计具有新颖结构和功能的蛋白质。
FEBS Lett. 2020 Jul;594(14):2199-2212. doi: 10.1002/1873-3468.13796. Epub 2020 May 9.
5
Dynamics, a Powerful Component of Current and Future in Silico Approaches for Protein Design and Engineering.动力学:当前及未来计算蛋白质设计和工程方法的强大组成部分。
Int J Mol Sci. 2020 Apr 14;21(8):2713. doi: 10.3390/ijms21082713.
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Ab initio folding of a trefoil-fold motif reveals structural similarity with a β-propeller blade motif.从头折叠三叶型结构基序揭示了与β-发夹叶状结构基序的结构相似性。
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7
ProDCoNN: Protein design using a convolutional neural network.ProDCoNN:使用卷积神经网络进行蛋白质设计。
Proteins. 2020 Jul;88(7):819-829. doi: 10.1002/prot.25868. Epub 2020 Jan 6.
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Better together: building protein oligomers naturally and by design.协同增效:自然和设计构建蛋白质寡聚体。
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The SCOP database in 2020: expanded classification of representative family and superfamily domains of known protein structures.2020 年的 SCOP 数据库:已知蛋白质结构的代表性家族和超家族域的扩展分类。
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