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慢凝血酶激活血栓调节蛋白的分子基础。

Molecular basis of thrombomodulin activation of slow thrombin.

机构信息

Department of Haematology, Cambridge Institute for Medical Research, University of Cambridge, Cambridge CB2 0XY, UK.

出版信息

J Thromb Haemost. 2009 Oct;7(10):1688-95. doi: 10.1111/j.1538-7836.2009.03563.x. Epub 2009 Jul 28.

Abstract

BACKGROUND

Coagulation is a highly regulated process where the ability to prevent blood loss after injury is balanced against the maintenance of blood fluidity. Thrombin is at the center of this balancing act. It is the critical enzyme for producing and stabilizing a clot, but when complexed with thrombomodulin (TM) it is converted to a powerful anticoagulant. Another cofactor that may play a role in determining thrombin function is the monovalent cation Na(+). Its apparent affinity suggests that half of the thrombin generated is in a Na(+)-free 'slow' state and half is in a Na(+)-coordinated 'fast' state. While slow thrombin is a poor procoagulant enzyme, when complexed to TM it is an effective anticoagulant.

METHODS

To better understand this molecular transformation we solved a 2.4 A structure of thrombin complexed with EGF domains 4-6 of TM in the absence of Na(+) and other cofactors or inhibitors.

RESULTS

We find that TM binds as previously observed, and that the thrombin component resembles structures of the fast form. The Na(+) binding loop is observed in a conformation identical to the Na(+)-bound form, with conserved water molecules compensating for the missing ion. Using the fluorescent probe p-aminobenzamidine we show that activation of slow thrombin by TM principally involves the opening of the primary specificity pocket.

CONCLUSIONS

These data show that TM binding alters the conformation of thrombin in a similar manner as Na(+) coordination, resulting in an ordering of the Na(+) binding loop and an opening of the adjacent S1 pocket. We conclude that other, more subtle subsite changes are unlikely to influence thrombin specificity toward macromolecular substrates.

摘要

背景

凝血是一个高度调节的过程,其中受伤后防止失血的能力与维持血液流动性相平衡。凝血酶处于这种平衡行为的中心。它是产生和稳定血栓的关键酶,但与血栓调节蛋白(TM)复合时,它会转化为强大的抗凝剂。另一个可能在决定凝血酶功能中起作用的辅助因子是单价阳离子 Na(+)。其表观亲和力表明,生成的凝血酶有一半处于无 Na(+)的“慢”状态,另一半处于 Na(+)配位的“快”状态。虽然慢凝血酶是一种较差的促凝酶,但与 TM 复合时,它是一种有效的抗凝剂。

方法

为了更好地理解这种分子转化,我们在没有 Na(+)和其他辅因子或抑制剂的情况下,解决了与 TM 的 EGF 结构域 4-6 复合的凝血酶的 2.4 A 结构。

结果

我们发现 TM 如前所述结合,并且凝血酶成分类似于快速形式的结构。Na(+)结合环处于与 Na(+)结合形式相同的构象,保守的水分子补偿了缺失的离子。使用荧光探针 p-氨基苯甲脒,我们表明 TM 激活慢凝血酶主要涉及主要特异性口袋的打开。

结论

这些数据表明,TM 结合以与 Na(+)配位相似的方式改变凝血酶的构象,导致 Na(+)结合环的有序化和相邻 S1 口袋的打开。我们得出结论,其他更微妙的亚位点变化不太可能影响凝血酶对大分子底物的特异性。

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