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An in silico and in vitro approach to elucidate the impact of residues flanking the cleavage scissile bonds of FVIII

机译:一种计算机模拟和体外方法,以阐明残基对FVIII易裂键的影响

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摘要

Coagulation Factor VIII is activated by an ordered limited thrombin proteolysis with different catalytic efficiency at three P1 Arginine residues: Arg759> Arg1708>Arg391, indicating the flanking residues of the latter to be less optimal. This study aimed to investigate, in silico and in vitro, the impact of possessing hypothetically optimized residues at these three catalytic cleavage sites. The structural impact of the residues flanking Arginine cleavage sites was studied by in silico analysis through comparing the cleavage cleft of the native site with a hypothetically optimized sequence at each site. Moreover, recombinant FVIII proteins were prepared by replacing the sequences flanking native thrombin cleavage sites with the proposed cleavage-optimized sequence. FVIII specific activity was determined by assessing the FVIII activity levels in relation to FVIII antigen levels. We further investigated whether thrombin generation could reflect the haemostatic potential of the variants. Our in silico results show the impact of the residues directly in the cleavage bond, and their neighboring residues on the insertion efficiency of the loop into the thrombin cleavage cleft. Moreover, the in vitro analysis shows that the sequences flanking the Arg1708 cleavage site seem to be the most close to optimal residues for achieving the maximal proteolytic activation and profactor activity of FVIII. The residues flanking the scissile bonds of FVIIII affect the cleavage rates and modulate the profactor activation. We were able to provide insights into the mechanisms of the specificity of thrombin for the P1 cleavage sites of FVIII. Thus, the P4-P2´ residues surrounding Arg1708 of FVIII have the highest impact on rates of thrombin proteolysis which contributes to thrombin activation of the profactor and eventually to the thrombin generation potential.
机译:凝血因子VIII被有序的有限凝血酶蛋白水解活化,在三个P1精氨酸残基上具有不同的催化效率:Arg 759 > Arg 1708 > Arg 391 ,表明后者的侧翼残基不太理想。这项研究的目的是在计算机和体外研究在这三个催化裂解位点上拥有假设最优化残基的影响。通过计算机模拟分析,通过比较天然位点的裂解裂口和每个位点假设优化的序列,研究了精氨酸裂解位点侧翼残基的结构影响。此外,重组FVIII蛋白的制备方法是,将天然凝血酶裂解位点两侧的序列替换为建议的裂解优化序列。通过评估相对于FVIII抗原水平的FVIII活性水平来确定FVIII比活性。我们进一步研究了凝血酶的产生是否可以反映这些变体的止血潜力。我们的计算机模拟结果表明,残基直接位于裂解键中,其邻近残基对环插入凝血酶裂解裂缝中的插入效率产生影响。此外,体外分析表明,Arg 1708 切割位点两侧的序列似乎最接近于最佳残基,以实现FVIII的最大蛋白水解激活和前因子活性。 FVIIII的易断裂键侧翼的残基影响切割速率并调节前体因子的活化。我们能够提供关于凝血酶对FVIII的P1裂解位点特异性机制的见解。因此,FVIII的Arg 1708 周围的P4-P2´残基对凝血酶蛋白水解速率的影响最大,凝血酶蛋白水解率有助于促凝血酶原的凝血酶活化,并最终促进凝血酶的生成。

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