School of Chemical and Biological Engineering, Institute of Molecular Biology and Genetics and Institute of Bioengineering, Seoul National University, Seoul, South Korea.
Department of Environmental Engineering, College of Engineering, Ajou University, Suwon, Gyeonggi-do, South Korea.
Appl Microbiol Biotechnol. 2018 Jan;102(1):269-277. doi: 10.1007/s00253-017-8584-y. Epub 2017 Nov 9.
CYP153A35 from Gordonia alkanivorans was recently characterized as fatty acid ω-hydroxylase. To enhance the catalytic activity of CYP153A35 toward palmitic acid, site-directed saturation mutagenesis was attempted using a semi-rational approach that combined structure-based computational analysis and subsequent saturation mutagenesis. Using colorimetric high-throughput screening (HTS) method based on O-demethylation activity of P450, CYP153A35 D131S and D131F mutants were selected. The best mutant, D131S, having a single mutation on BC-loop, showed 13- and 17-fold improvement in total turnover number (TTN) and catalytic efficiency (k /K ) toward palmitic acid compared to wild-type, respectively. However, in whole-cell reaction, D131S mutant showed only 50% improvement in ω-hydroxylated palmitic acid yield compared to the wild type. Docking simulation studies explained that the effect of D131S mutation on the catalytic activity would be mainly caused by the binding pose of fatty acids in the substrate access tunnel of the enzyme. This effect of D131S mutation on the catalytic activity is synergistic with that of the mutations in the active site previously reported.
最近,从戈登氏菌中鉴定出一种脂肪酸 ω-羟化酶 CYP153A35。为了提高 CYP153A35 对棕榈酸的催化活性,采用基于结构的计算分析与随后的饱和突变相结合的半理性方法进行了定点饱和突变。利用基于 P450 的 O-脱甲基化活性的比色高通量筛选 (HTS) 方法,筛选出 CYP153A35 D131S 和 D131F 突变体。在 BC 环上只有一个突变的最佳突变体 D131S,与野生型相比,对棕榈酸的总周转率 (TTN) 和催化效率 (k /K ) 分别提高了 13 倍和 17 倍。然而,在全细胞反应中,与野生型相比,D131S 突变体的 ω-羟基化棕榈酸产率仅提高了 50%。对接模拟研究表明,D131S 突变对催化活性的影响主要是由于脂肪酸在酶底物进入隧道中的结合构象所致。这种 D131S 突变对催化活性的影响与先前报道的活性位点突变的影响具有协同作用。