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首页> 外文期刊>Protein engineering design & selection: PEDS >Modifying the catalytic preference of tributyrin in Bacillus thermocatenulatus lipase through in-silico modeling of enzyme-substrate complex
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Modifying the catalytic preference of tributyrin in Bacillus thermocatenulatus lipase through in-silico modeling of enzyme-substrate complex

机译:通过计算机模拟酶-底物复合物来修饰三丁酸甘油酯在热芽孢杆菌脂肪酶中的催化偏好

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In this study, rational design for Bacillus thermocatenulatus lipase (BTL2) was carried out to lower the activation barrier for hydrolysis of short-chain substrates. In this design, we used computational models for the enzyme-substrate (ES) complexes of tributyrin (C4) and tricaprylin (C8), which were generated through docking and molecular dynamics (MD) simulations. These ES complexes were employed in steered MD (SMD) simulations with Jarzynski's equality to estimate their relative binding free energies. Potential mutation sites for modifying the chain-length selectivity of BTL2 were found by inspecting the SMD trajectories and fine-tuning the volume and hydrophobicity of the cleft. Seven mutations (F17A, L57F, V175A, V175F, I320A, I320F and L360F) were performed to cover three binding pockets for sn-1, sn-2 and sn-3 acyl chains. The relative binding free energies of the mutant ES complexes formed by C4 and C8 ligands were calculated similarly. The experimental routines of protein engineering including site-directed mutagenesis, heterologous protein expression and purification were performed for all lipases. Steady-state specific activities towards C4 and C8 were determined for wild-type and mutant lipases, which gave an estimate of the relative change in the binding free energy of transition state complex (ES?). The chain-length selectivity of mutants was determined from the relative changes in the activation barrier of hydrolysis of C4 and C8 triacylglycerol with respect to wild-type using computational and experimental findings. The most promising mutant for C4 over C8 preference was found to be L360F. We suggest that L360F may be at a critical position to lower the activation barrier for C4 and elevate it for C8 hydrolysis.
机译:在这项研究中,合理设计了热芽孢杆菌脂肪酶(BTL2),以降低短链底物水解的激活障碍。在此设计中,我们使用了三丁酸甘油酯(C4)和三辛酸甘油酯(C8)的酶-底物(ES)复合物的计算模型,这些模型是通过对接和分子动力学(MD)模拟生成的。这些ES配合物与Jarzynski的等式一起用于定向MD(SMD)模拟中,以估计它们的相对结合自由能。通过检查SMD轨迹并微调裂口的体积和疏水性,发现了可能的修饰BTL2链长选择性的突变位点。进行了七个突变(F17A,L57F,V175A,V175F,I320A,I320F和L360F),以覆盖sn-1,sn-2和sn-3酰基链的三个结合口袋。类似地计算了由C4和C8配体形成的突变ES复合物的相对结合自由能。对所有脂肪酶进行蛋白质工程实验程序,包括定点诱变,异源蛋白质表达和纯化。测定了野生型和突变型脂肪酶对C4和C8的稳态比活性,从而估计了过渡态复合物(ES′)的结合自由能的相对变化。突变体的链长选择性是根据计算和实验结果,根据C4和C8三酰甘油水解相对于野生型的活化屏障的相对变化来确定的。发现C4优于C8偏好的最有前途的突变体是L360F。我们建议,L360F可能在降低C4的激活屏障并提高C8水解的关键位置。

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