Department of Medicinal Chemistry, Institute for Structural Biology and Drug Discovery, Virginia Commonwealth University, Richmond, VA 23298, United States.
Biochem Biophys Res Commun. 2011 Sep 23;413(2):348-52. doi: 10.1016/j.bbrc.2011.08.102. Epub 2011 Aug 27.
Sulfated, low molecular weight lignins (LMWLs), designed recently as macromolecular mimetics of the low molecular weight heparins (LMWHs), were found to exhibit a novel allosteric mechanism of inhibition of human thrombin, factor Xa and plasmin, which translates into potent human blood anticoagulation potential. To identify the site of binding of sulfated LMWLs, a panel of site-directed thrombin mutants was studied. Substitution of alanine for Arg(93) or Arg(175) induced a 7-8-fold decrease in inhibition potency, while Arg(165)Ala, Lys(169)Ala, Arg(173)Ala and Arg(233)Ala thrombin mutants displayed a 2-4-fold decrease. Other exosite 2 residues including those that play an important role in heparin binding, such as Arg(101), Lys(235), Lys(236) and Lys(240), did not induce any deficiency in sulfated LMWL activity. Thrombin mutants with multiple alanine substitution of basic residues showed a progressively greater defect in inhibition potency. Comparison of thrombin, factor Xa, factor IXa and factor VIIa primary sequences reiterated Arg(93) and Arg(175) as residues likely to be targeted by sulfated LMWLs. The identification of a novel site on thrombin with capability of allosteric modulation is expected to greatly assist the design of new regulators based on the sulfated LMWL scaffold.
最近设计的磺酸化低分子量木质素(LMWLs)作为低分子量肝素(LMWHs)的大分子模拟物,被发现对人凝血酶、因子 Xa 和纤溶酶具有新型变构抑制机制,这转化为潜在的强效人体血液抗凝作用。为了确定磺酸化 LMWLs 的结合位点,研究了一组定点突变的凝血酶。用丙氨酸取代 Arg(93)或 Arg(175)会导致抑制效力降低 7-8 倍,而 Arg(165)Ala、Lys(169)Ala、Arg(173)Ala 和 Arg(233)Ala 凝血酶突变体的抑制效力降低 2-4 倍。其他 exosite 2 残基,包括在肝素结合中起重要作用的残基,如 Arg(101)、Lys(235)、Lys(236)和 Lys(240),不会导致磺酸化 LMWL 活性的任何缺陷。具有多个碱性残基丙氨酸取代的凝血酶突变体显示出抑制效力逐渐降低的缺陷。凝血酶、因子 Xa、因子 IXa 和因子 VIIa 一级序列的比较再次表明 Arg(93)和 Arg(175)是磺酸化 LMWLs 可能靶向的残基。鉴定出凝血酶上具有变构调节能力的新位点,有望极大地协助基于磺酸化 LMWL 支架设计新型调节剂。