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关于 Licanantase 的结构和稳定性的研究:一种来自嗜酸硫杆菌的三聚体酸稳定卷曲螺旋脂蛋白。

Insights on the structure and stability of Licanantase: a trimeric acid-stable coiled-coil lipoprotein from Acidithiobacillus thiooxidans.

机构信息

Computational Biology Lab (DLab), Fundación Ciencia y Vida , Ñuñoa, Santiago , Chile ; Centro Interdisciplinario de Neurociencias de Valparaíso (CINV), Universidad de Valparaíso , Valparaíso , Chile.

Biosigma S.A. , Colina, Santiago , Chile.

出版信息

PeerJ. 2014 Aug 5;2:e457. doi: 10.7717/peerj.457. eCollection 2014.

Abstract

Licanantase (Lic) is the major component of the secretome of Acidithiobacillus thiooxidans when grown in elemental sulphur. When used as an additive, Lic improves copper recovery from bioleaching processes. However, this recovery enhancement is not fully understood. In this context, our aim is to predict the 3D structure of Lic, to shed light on its structure-function relationships. Bioinformatics analyses on the amino acid sequence of Lic showed a great similarity with Lpp, an Escherichia coli Lipoprotein that can form stable trimers in solution. Lic and Lpp share the secretion motif, intracellular processing and alpha helix structure, as well as the distribution of hydrophobic residues in heptads forming a hydrophobic core, typical of coiled-coil structures. Cross-linking experiments showed the presence of Lic trimers, supporting our predictions. Taking the in vitro and in silico evidence as a whole, we propose that the most probable structure for Lic is a trimeric coiled-coil. According to this prediction, a suitable model for Lic was produced using the de novo algorithm "Rosetta Fold-and-Dock". To assess the structural stability of our model, Molecular Dynamics (MD) and Replica Exchange MD simulations were performed using the structure of Lpp and a 14-alanine Lpp mutant as controls, at both acidic and neutral pH. Our results suggest that Lic was the most stable structure among the studied proteins in both pH conditions. This increased stability can be explained by a higher number of both intermonomer hydrophobic contacts and hydrogen bonds, key elements for the stability of Lic's secondary and tertiary structure.

摘要

硫氧化嗜酸菌在单质硫中生长时,利坎那肽(Lic)是其分泌物的主要成分。当用作添加剂时,Lic 可以提高生物浸出过程中铜的回收率。然而,这种回收率的提高还不完全清楚。在这种情况下,我们的目标是预测 Lic 的 3D 结构,以揭示其结构-功能关系。对 Lic 的氨基酸序列进行生物信息学分析表明,它与大肠杆菌脂蛋白 Lpp 具有高度相似性,后者在溶液中可以形成稳定的三聚体。Lic 和 Lpp 具有相同的分泌基序、细胞内加工和α螺旋结构,以及形成疏水性核心的七肽中疏水性残基的分布,这是典型的卷曲螺旋结构特征。交联实验表明存在 Lic 三聚体,这支持了我们的预测。综合体外和计算证据,我们提出 Lic 的最可能结构是三聚体卷曲螺旋。根据这一预测,使用从头算法“Rosetta Fold-and-Dock”为 Lic 生成了一个合适的模型。为了评估我们模型的结构稳定性,使用 Lpp 的结构和 14 个丙氨酸 Lpp 突变体作为对照,在酸性和中性 pH 条件下进行了分子动力学(MD)和复制交换 MD 模拟。我们的结果表明,在两种 pH 条件下,Lic 是研究的蛋白质中最稳定的结构。这种增加的稳定性可以通过增加单体间的疏水接触和氢键的数量来解释,这是 Lic 的二级和三级结构稳定性的关键因素。

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