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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。

Ab initio folding of a trefoil-fold motif reveals structural similarity with a β-propeller blade motif.

机构信息

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

出版信息

Protein Sci. 2020 May;29(5):1172-1185. doi: 10.1002/pro.3850. Epub 2020 Mar 25.

Abstract

Many protein architectures exhibit evidence of internal rotational symmetry postulated to be the result of gene duplication/fusion events involving a primordial polypeptide motif. A common feature of such structures is a domain-swapped arrangement at the interface of the N- and C-termini motifs and postulated to provide cooperative interactions that promote folding and stability. De novo designed symmetric protein architectures have demonstrated an ability to accommodate circular permutation of the N- and C-termini in the overall architecture; however, the folding requirement of the primordial motif is poorly understood, and tolerance to circular permutation is essentially unknown. The β-trefoil protein fold is a threefold-symmetric architecture where the repeating ~42-mer "trefoil-fold" motif assembles via a domain-swapped arrangement. The trefoil-fold structure in isolation exposes considerable hydrophobic area that is otherwise buried in the intact β-trefoil trimeric assembly. The trefoil-fold sequence is not predicted to adopt the trefoil-fold architecture in ab initio folding studies; rather, the predicted fold is closely related to a compact "blade" motif from the β-propeller architecture. Expression of a trefoil-fold sequence and circular permutants shows that only the wild-type N-terminal motif definition yields an intact β-trefoil trimeric assembly, while permutants yield monomers. The results elucidate the folding requirements of the primordial trefoil-fold motif, and also suggest that this motif may sample a compact conformation that limits hydrophobic residue exposure, contains key trefoil-fold structural features, but is more structurally homologous to a β-propeller blade motif.

摘要

许多蛋白质结构表现出内部旋转对称性的证据,这种对称性被认为是涉及原始多肽模体的基因复制/融合事件的结果。这种结构的一个共同特征是 N 端和 C 端模体界面处的结构域交换排列,并假定这种排列提供促进折叠和稳定性的协同相互作用。从头设计的对称蛋白质结构已经证明能够适应 N 端和 C 端在整体结构中的环状排列;然而,原始模体的折叠要求理解得很差,对环状排列的容忍度基本上是未知的。β-三叶形蛋白折叠是一种具有三重旋转对称性的结构,其中重复的~42 个氨基酸的“三叶形折叠”模体通过结构域交换排列组装。孤立的三叶形折叠结构暴露了大量的疏水区,否则这些疏水区会被埋藏在完整的β-三叶形三聚体组装中。在从头折叠研究中,三叶形折叠序列预计不会采用三叶形折叠结构;相反,预测的折叠与来自β-发夹结构的紧凑“叶片”模体密切相关。三叶形折叠序列及其环状排列的表达表明,只有野生型 N 端模体定义能够产生完整的β-三叶形三聚体组装,而排列变体只能产生单体。结果阐明了原始三叶形折叠模体的折叠要求,并且还表明该模体可能采用一种紧凑的构象,限制疏水性残基的暴露,包含关键的三叶形折叠结构特征,但与β-发夹叶片模体的结构同源性更高。

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