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Bridges to Stability: Engineering Disulfide Bonds Towards Enhanced Lipase Biodiesel Synthesis

机译:稳定性的桥梁:用于增强脂肪酶生物柴油合成的二硫化脲键

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摘要

Computational design of disulfide bonds was performed for lipase from Geobacillus stearothermophilus T6 (LipT6) for enhanced methanol stability and improved biodiesel production. Thirteen double mutants comprising new cysteine pairs were screened and evaluated for their stability in 70 % methanol. Superior stability was found with variant E251C/G332C (M13) having a 5.5-fold higher hydrolysis activity and enhanced unfolding temperature (T-m) of +7.9 degrees C in methanol compared with wild-type. Moreover, M13 converted nearly 80 % waste chicken oil to biodiesel, representing a 2.4-fold improvement relative to the WT. Structural studies using X-ray crystallography confirmed the existence of the engineered disulfide bonds shedding light on the link between the bond location and backbone architecture with its stabilization impact. Rational integration of disulfide bonds is suggested to be a feasible method to promote elevated stability in organic solvents for various industrial applications such as biodiesel synthesis.
机译:用于从Geobacillus Stearothermophilus T6(Lipt6)的脂肪酶进行二硫键的计算设计,用于增强甲醇稳定性和改善的生物柴油生产。筛选包含新的半胱氨酸对的十三个双突变体,并评价其70%甲醇中的稳定性。用5.5倍较高的水解活性的变体E251C / G332C(M13)发现优异的稳定性,与野生型相比,在甲醇中具有5.5倍的水解活性和增强的展开温度(T-M)+7.9℃。此外,M13将近80%的废鸡油转化为生物柴油,相对于WT表示2.4倍的改善。使用X射线晶体学的结构研究证实了在粘合位置和骨干架构之间的连杆上的工程化二硫键的存在,其稳定撞击。建议是促进各种工业应用如生物柴油合成的各种工业应用的有机溶剂中升高稳定性的可行方法。

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