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靶向癌胚纤维连接蛋白的泛素衍生人工结合蛋白通过 β-链滑动揭示支架可塑性。

Ubiquitin-derived artificial binding proteins targeting oncofetal fibronectin reveal scaffold plasticity by β-strand slippage.

机构信息

Navigo Proteins GmbH, Heinrich-Damerow-Straße 1, 06120, Halle (Saale), Germany.

Martin-Luther-University Halle-Wittenberg, Institute of Biochemistry and Biotechnology, Kurt-Mothes-Straße 3a, 06120, Halle (Saale), Germany.

出版信息

Commun Biol. 2024 Jul 27;7(1):907. doi: 10.1038/s42003-024-06569-9.

Abstract

Affilin proteins, artificial binding proteins based on the ubiquitin scaffold, have been generated by directed protein evolution to yield de-novo variants that bind the extra-domain B (EDB) of oncofetal fibronectin, an established marker of tumor neovasculature. The crystal structures of two EDB-specific Affilin variants reveal a striking structural plasticity of the ubiquitin scaffold, characterised by β-strand slippage, leading to different negative register shifts of the β5 strands. This process recruits amino acid residues from β5 towards the N-terminus to an adjacent loop region and subsequent residues into β5, respectively, remodeling the binding interface and leading to target specificity and affinity. Protein backbone alterations resulting from β-strand register shifts, as seen in the ubiquitin fold, can pose additional challenges to protein engineering as structural evidence of these events is still limited and they are difficult to predict. However, they can surface under the selection pressure of directed evolution and suggest that backbone plasticity allowing β-strand slippages can increase structural diversity, enhancing the evolutionary potential of a protein scaffold.

摘要

粘连蛋白是基于泛素支架的人工结合蛋白,通过定向蛋白质进化产生,能够生成新的变体,与肿瘤新生血管的标志物之一——胎源性纤维连接蛋白的外结构域 B(EDB)结合。两种 EDB 特异性粘连蛋白变体的晶体结构揭示了泛素支架惊人的结构可塑性,其特征是β-链滑动,导致β5 链的负寄存器发生不同的移位。这个过程将β5 上的氨基酸残基分别募集到相邻的环区和β5 中的后续残基,重塑结合界面,并导致靶标特异性和亲和力。在泛素折叠中可见到的β-链寄存器移位导致的蛋白质骨架改变可能对蛋白质工程构成额外挑战,因为这些事件的结构证据仍然有限,并且难以预测。然而,它们可以在定向进化的选择压力下显现出来,表明允许β-链滑动的骨架可塑性可以增加结构多样性,增强蛋白质支架的进化潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/41fe/11283464/63269a388c05/42003_2024_6569_Fig1_HTML.jpg

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