Chen Huayou, Tian Rui, Ni Zhong, Zhang Qing, Zhang Tianxi, Chen Zhi, Chen Keping, Yang Shengli
Institute of Life Sciences, Jiangsu University, Zhenjiang, 212013, China,
Extremophiles. 2015 Jul;19(4):799-808. doi: 10.1007/s00792-015-0755-0. Epub 2015 May 31.
Lipases expressed in microbial hosts have great commercial value, but their applications are restricted by the high costs of production and harsh conditions used in industrial processes, such as high temperature and alkaline environment. In this study, an Escherichia coli-Bacillus subtilis shuttle vector (pHS-cotB-Tm1350) was constructed for the spore surface display of the lipase Tm1350 from hyperthermophilic bacterium Thermotoga maritima MSB8. Successful display of the CotB-Tm1350 fusion protein on spore surface was confirmed by Western blot analysis and activity measurements. The optimal catalytic temperature and pH of the spore surface-displayed Tm1350 were 80 °C and 9, respectively, which were higher than non-immobilized Tm1350 (70 °C and pH 7.5). Analysis of thermal and pH stability showed that spore surface-displayed Tm1350 retained 81 or 70 % of its original activity after 8 h of incubation at pH 8 or pH 9 (70 °C), which were 18 % higher than the retained activity of the non-immobilized Tm1350 under the same conditions. Meanwhile, recycling experiments showed that the recombinant spores could be used for up to three reaction cycles without a significant decrease in the catalytic rate (84 %). These results suggested that enzyme display on the surface of the B. subtilis spore could serve as an effective approach for enzyme immobilization, which has potential applications in the harsh biochemical industry.
在微生物宿主中表达的脂肪酶具有巨大的商业价值,但其应用受到生产成本高昂以及工业生产过程中所使用的苛刻条件(如高温和碱性环境)的限制。在本研究中,构建了一种大肠杆菌-枯草芽孢杆菌穿梭载体(pHS-cotB-Tm1350),用于嗜热栖热菌Thermotoga maritima MSB8的脂肪酶Tm1350在孢子表面的展示。通过蛋白质免疫印迹分析和活性测定证实了CotB-Tm1350融合蛋白在孢子表面的成功展示。孢子表面展示的Tm1350的最佳催化温度和pH分别为80°C和9,高于未固定化的Tm1350(70°C和pH 7.5)。热稳定性和pH稳定性分析表明,孢子表面展示的Tm1350在pH 8或pH 9(70°C)下孵育8小时后保留了其原始活性的81%或70%,比相同条件下未固定化的Tm1350的保留活性高18%。同时,循环实验表明,重组孢子可用于多达三个反应循环,而催化速率没有显著下降(84%)。这些结果表明,枯草芽孢杆菌孢子表面的酶展示可作为一种有效的酶固定化方法,在苛刻的生化工业中具有潜在应用。