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Improved activity and thermostability of Bacillus pumilus lipase by directed evolution.

机译:通过定向进化提高了短小芽孢杆菌脂肪酶的活性和热稳定性。

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摘要

To improve enzymatic activity of Bacillus pumilus lipases, DNA shuffling was applied to two lipase genes from local B. pumilus isolates. Using a high-throughput activity assay, the mutant with highest activity was selected. This chimeric mutant (L3-3), carrying two crossover positions and three point mutations, has a specific activity 6.4 and 8.2 times higher than the two parent enzymes. The mutant also is more tolerant to various detergents and organic solvents, and has a 9 times longer half-life at 50 degrees C. Homology modeling of mutant L3-3, based on the highly homologous B. subtilis lipase A, shows that the increased thermostability is likely due to structural rigidification and reduced surface hydrophobicity. Increased specific activity may result from the location of mutations close to the active site. Together, our results show that it is possible to evolve, by DNA shuffling, B. pumilus lipase variants with improved applicability as biocatalysts, even if the two parent enzymes are highly similar
机译:为了提高短小芽孢杆菌脂肪酶的酶促活性,将DNA改组应用于来自短小芽孢杆菌分离株的两个脂肪酶基因。使用高通量活性测定法,选择具有最高活性的突变体。此嵌合突变体(L3-3)带有两个交叉位置和三个点突变,比活性比两个亲本酶高6.4和8.2倍。该突变体还对各种去污剂和有机溶剂具有更高的耐受性,并且在50摄氏度下的半衰期长9倍。基于高度同源的枯草芽孢杆菌脂肪酶A,突变体L3-3的同源性建模显示热稳定性可能是由于结构刚性和降低的表面疏水性。比活性增加可能是由于突变靠近活性位点的位置所致。总之,我们的结果表明,即使两种亲本酶高度相似,也可以通过DNA改组发展出短双歧杆菌脂肪酶变体,并具有更高的生物催化剂适用性。

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