Adina Selfela Restu, Suwanto Antonius, Meryandini Anja, Puspitasari Esti
Graduate School of Microbiology, Department of Biology, Faculty of Mathematics and Natural Science, IPB University, Bogor, 16680, Indonesia.
Department of Biology, Faculty of Mathematics and Natural Science, IPB University, Bogor, 16680, Indonesia.
J Genet Eng Biotechnol. 2021 Apr 7;19(1):55. doi: 10.1186/s43141-021-00155-w.
Lipases are promising biocatalysts for industrial applications and attract attention to be explored. A novel acidic lipase has been isolated from the lipolytic bacteria Micrococcus luteus EMP48-D (LipEMP48-D) screened from tempeh. The lipase gene had previously been overexpressed in Escherichia coli BL21, but the expression level obtained was relatively low. Here, to improve the expression level, the lipase gene was cloned to Pichia pastoris. We eliminated the native signal sequence of M. luteus and replaced it with α-mating factor (α-MF) signal sequence. We also optimized and synthesized the lipase gene based on codon preference in P. pastoris.
LipEMP48-D lipase was expressed as an extracellular protein. Codon optimization has been conducted for 20 codons, with the codon adaption index reaching 0.995. The highest extracellular lipase activity obtained reached 145.4 ± 4.8 U/mg under AOX1 promoter in P. pastoris KM71 strain, which was 9.7-fold higher than the previous activity in E. coli. LipEMP48-D showed the highest specific activity at pH 5.0 and stable within the pH range 3.0-5.0 at 40 °C. LipEMP48-D also has the capability of hydrolyzing various long-chain triglycerides, particularly olive oil (100%) followed by sunflower oil (88.5%). LipEMP48-D exhibited high tolerance for various polar organic solvents with low log P, such as isopropanol (115.7%) and butanol (114.6%). The metal ions (Na, K, Ca, Mg, Mn) decreased enzyme activity up to 43.1%, while Fe increased relative activity of enzymes up to 200%. The conversion of free fatty acid (FFA) into fatty acid methyl ester (FAME) was low around 2.95%.
This study was the first to report overexpression of Micrococcus lipase in yeast. The extracellular expression of this acidic lipase could be potential for biocatalyst in industrial fields, especially organic synthesis, food industry, and production of biodiesel.
脂肪酶是工业应用中很有前景的生物催化剂,受到人们的关注并有待探索。一种新型酸性脂肪酶已从从丹贝中筛选出的解脂细菌藤黄微球菌EMP48-D(LipEMP48-D)中分离出来。该脂肪酶基因此前已在大肠杆菌BL21中过表达,但获得的表达水平相对较低。在此,为提高表达水平,将脂肪酶基因克隆到毕赤酵母中。我们去除了藤黄微球菌的天然信号序列,并用α-交配因子(α-MF)信号序列取而代之。我们还根据毕赤酵母中的密码子偏好对脂肪酶基因进行了优化和合成。
LipEMP48-D脂肪酶作为一种细胞外蛋白表达。对20个密码子进行了密码子优化,密码子适应指数达到0.995。在毕赤酵母KM71菌株的AOX1启动子下,获得的最高细胞外脂肪酶活性达到145.4±4.8 U/mg,比之前在大肠杆菌中的活性高9.7倍。LipEMP48-D在pH 5.0时表现出最高的比活性,在40℃下于pH 3.0 - 5.0范围内稳定。LipEMP48-D还具有水解各种长链甘油三酯的能力,特别是橄榄油(100%),其次是向日葵油(88.5%)。LipEMP48-D对各种低log P的极性有机溶剂表现出高耐受性,如异丙醇(115.7%)和丁醇(114.6%)。金属离子(Na、K、Ca、Mg、Mn)使酶活性降低高达43.1%,而Fe使酶的相对活性提高高达200%。游离脂肪酸(FFA)转化为脂肪酸甲酯(FAME)的转化率较低,约为2.95%。
本研究首次报道了微球菌脂肪酶在酵母中的过表达。这种酸性脂肪酶的细胞外表达在工业领域,特别是有机合成、食品工业和生物柴油生产中作为生物催化剂具有潜力。