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VEK-30 与纤溶酶原kringle2 复合物的溶液结构。

Solution structure of the complex of VEK-30 and plasminogen kringle 2.

机构信息

W.M. Keck Center for Transgene Research, 230 Raclin-Carmichael Hall, University of Notre Dame, Notre Dame, IN 46556, USA.

出版信息

J Struct Biol. 2010 Mar;169(3):349-59. doi: 10.1016/j.jsb.2009.09.011. Epub 2009 Sep 30.

Abstract

The solution structure of the complex containing the isolated kringle 2 domain of human plasminogen (K2(Pg)) and VEK-30, a 30-amino acid residue internal peptide from a streptococcal M-like plasminogen (Pg) binding protein (PAM), has been determined by multinuclear high-resolution NMR. Complete backbone and side-chain assignments were obtained from triple-resonance experiments, after which structure calculations were performed and ultimately refined by restrained molecular simulation in water. We find that, in contrast with the dimer of complexes observed in the asymmetric unit of the crystal, global correlation times and buoyant molecular weight determinations of the complex and its individual components showed the monomeric nature of all species in solution. The NMR-derived structure of K2(Pg) in complex with VEK-30 presents a folding pattern typical of other kringle domains, while bound VEK-30 forms an end-to-end alpha-helix (residues 6-27) in the complex. Most of the VEK-30/K2(Pg) interactions in solution occur between a single face of the alpha-helix of VEK-30 and the lysine binding site (LBS) of K2(Pg). The canonical LBS of K2(Pg), consisting of Asp54, Asp56, Trp60, Arg69, and Trp70 (kringle numbering), interacts with an internal pseudo-lysine of VEK-30, comprising side-chains of Arg17, His18, and Glu20. Site-specific mutagenesis analysis confirmed that the electrostatic field formed by the N-terminal anionic residues of the VEK-30 alpha-helix, viz., Asp7, and the non-conserved cationic residues of K2(Pg), viz., Lys43 and Arg55, play additional important roles in the docking of VEK-30 to K2(Pg). Structural analysis and kringle sequence alignments revealed several important features related to exosite binding that provide a structural rationale for the high specificity and affinity of VEK-30 for K2(Pg).

摘要

已通过多核高分辨率 NMR 确定了包含人纤溶酶原(K2(Pg))孤立kringle 2 结构域和来自链球菌 M 样纤溶酶原(Pg)结合蛋白(PAM)的 30 个氨基酸残基内肽(VEK-30)的复合物的溶液结构。通过三共振实验获得了完整的骨架和侧链分配,然后进行了结构计算,并最终通过在水中进行受限分子模拟进行了细化。我们发现,与晶体不对称单位中观察到的二聚复合物相比,复合物及其各个组分的全局相关时间和漂浮分子量测定表明,所有物种在溶液中均为单体。与 VEK-30 结合的 K2(Pg)的 NMR 衍生结构呈现出其他 kringle 结构域的典型折叠模式,而结合的 VEK-30 在复合物中形成了末端到末端的α-螺旋(残基 6-27)。溶液中大多数 VEK-30/K2(Pg)相互作用发生在 VEK-30 的α-螺旋的单个面和 K2(Pg)的赖氨酸结合位点(LBS)之间。K2(Pg)的典型 LBS 由 Asp54、Asp56、Trp60、Arg69 和 Trp70(kringle 编号)组成,与 VEK-30 的内部假赖氨酸相互作用,该赖氨酸由 Arg17、His18 和 Glu20 的侧链组成。定点突变分析证实,VEK-30α-螺旋的 N-末端阴离子残基形成的静电场,即 Asp7 和 K2(Pg)的非保守阳离子残基,即 Lys43 和 Arg55,在 VEK-30 与 K2(Pg)的对接中发挥了额外的重要作用。结构分析和 kringle 序列比对揭示了与外显子结合有关的几个重要特征,为 VEK-30 对 K2(Pg)的高特异性和亲和力提供了结构依据。

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Solution structure of the complex of VEK-30 and plasminogen kringle 2.VEK-30 与纤溶酶原kringle2 复合物的溶液结构。
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