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首页> 外文期刊>Journal of Molecular Biology >Crystal structure of earthworm fibrinolytic enzyme component a: revealing the structural determinants of its dual fibrinolytic activity.
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Crystal structure of earthworm fibrinolytic enzyme component a: revealing the structural determinants of its dual fibrinolytic activity.

机译:fi纤溶酶成分a的晶体结构:揭示了其双重纤溶活性的结构决定因素。

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摘要

Earthworm fibrinolytic enzyme component A (EFEa) from Eisenia fetida is a strong fibrinolytic enzyme that not only directly degrades fibrin, but also activates plasminogen. Proteolytic assays further revealed that it cleaved behind various P1 residue types. The crystal structure of EFEa was determined using the MIR method and refined to 2.3A resolution. The enzyme, showing the overall polypeptide fold of chymotrypsin-like serine proteases, possesses essential S1 specificity determinants characteristic of elastase. However, the beta strand at the west rim of the S1 specificity pocket is significantly elongated by a unique four-residue insertion (Ser-Ser-Gly-Leu) after Val217, which not only provides additional substrate hydrogen binding sites for distal P residues, but also causes extension of the S1 pocket at the south rim. The S2 subsite of the enzyme was partially occluded by the bulky side-chain of residue Tyr99. Structure-based inhibitor modeling demonstrated that EFEa's S1 specificity pocket was preferable for elastase-specific small hydrophobic P1 residues, while its accommodation of long and/or bulky P1 residues was also feasible if enhanced binding of the substrate and induced fit of the S1 pocket were achieved. EFEa is thereby endowed with relatively broad substrate specificity, including the dual fibrinolysis. The presence of Tyr99 at the S2 subsite indicates a preference for P2-Gly, while an induced fit of Tyr99 was also suggested for accommodation of bigger P2 residues. This structure is the first reported for an earthworm fibrinolytic enzyme component and serine protease originating from annelid worms.
机译:产自埃森尼亚(Eisenia fetida)的worm纤溶酶成分A(EFEa)是一种强大的纤溶酶,不仅可以直接降解纤维蛋白,还可以激活纤溶酶原。蛋白水解测定进一步揭示了它在各种P1残基类型后裂解。使用MIR方法确定EFEa的晶体结构,并将其提纯至2.3A分辨率。该酶显示出胰凝乳蛋白酶样丝氨酸蛋白酶的整体多肽折叠,具有弹性蛋白酶特有的必要的S1特异性决定子。然而,在Val217之后,独特的四残基插入(Ser-Ser-Gly-Leu)大大延长了S1特异性口袋西缘的β链,这不仅为远端P残基提供了额外的底物氢结合位点,但也会导致S1口袋在南缘延伸。该酶的S2亚位点被残基Tyr99的庞大侧链部分封闭。基于结构的抑制剂建模表明,EFEa的S1特异性口袋比弹性蛋白酶特异性的小疏水性P1残基更可取,而如果能够增强底物的结合力并诱导S1口袋的契合,则可以容纳长和/或大体积的P1残基。实现。因此,EFEa具有相对较宽的底物特异性,包括双重纤维蛋白溶解。在S2亚位点Tyr99的存在表明偏爱P2-Gly,而Tyr99的诱导拟合也被建议用于容纳更大的P2残基。这种结构是最早报道的源自纤毛虫的an纤溶酶成分和丝氨酸蛋白酶的结构。

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