Syal Poonam, Verma Ved Vrat, Gupta Rani
Department of Microbiology, University of Delhi South Campus, New Delhi 110021, India.
Department of Microbiology, University of Delhi South Campus, New Delhi 110021, India.
Int J Biol Macromol. 2017 Nov;104(Pt A):78-88. doi: 10.1016/j.ijbiomac.2017.06.003. Epub 2017 Jun 2.
Biodiesel, an environment friendly alternative for fuels, contains methyl esters of long-chain fatty acids. Our group has reported a methanol-stable YLIP9 from Yarrowia lipolytica MSR80 that shows poor catalysis of long-chain fatty acids. To shift its substrate specificity, residues within lid and binding pocket were identified for sequential mutations using YLIP2 as the template. Of the two point mutations (Glu116Leu and Ser119Val) introduced in the lid, the former mutation (YLIP9L1) increased the catalytic rate by ∼2-fold without any change in substrate specificity. In this mutant, six binding pocket residues (Bp2-Bp7) were further mutated to obtain six double mutants. YLIP9L1Bp3 showed significant shift in substrate specificity towards long-chain pNPesters with 11-fold increase in catalytic efficiency than YLIP9. Double mutations also led to increased thermostability and lowered activation energy of YLIP9L1Bp3 thereby shifting its optimum temperature from 60°C to 50°C. In silico molecular dynamics simulations revealed improved lid flexibility and increased catalytic triad volume in YLIP9L1Bp3. The enzyme YLIP9L1Bp3 was methanol-stable having selectivity for long-chain fatty acids with improved catalytic efficiency. Its application as a biodiesel enzyme was validated by transesterification of palm oil in presence of methanol, where it showed 8-fold increase in conversion of oil to methyl esters.
生物柴油是一种环境友好型燃料替代品,含有长链脂肪酸甲酯。我们团队报道了来自解脂耶氏酵母MSR80的一种甲醇稳定型YLIP9,它对长链脂肪酸的催化效果不佳。为了改变其底物特异性,以YLIP2为模板,确定了盖子和结合口袋内的残基进行顺序突变。在盖子中引入的两个点突变(Glu116Leu和Ser119Val)中,前一个突变(YLIP9L1)使催化速率提高了约2倍,而底物特异性没有任何变化。在这个突变体中,六个结合口袋残基(Bp2 - Bp7)进一步突变以获得六个双突变体。YLIP9L1Bp3对长链对硝基苯酯的底物特异性有显著改变,催化效率比YLIP9提高了11倍。双突变还导致YLIP9L1Bp3的热稳定性增加和活化能降低,从而使其最适温度从60°C变为50°C。计算机模拟分子动力学显示,YLIP9L1Bp3的盖子灵活性提高,催化三联体体积增加。酶YLIP9L1Bp3具有甲醇稳定性,对长链脂肪酸具有选择性,催化效率提高。在甲醇存在下,通过棕榈油的酯交换反应验证了其作为生物柴油酶的应用,在该反应中,它将油转化为甲酯 的转化率提高了8倍。