Wang Luyao, Tan Yuzhi, Sun Shengwei, Zhou Liangjie, Wu Guojun, Shao Yuting, Wang Mengxi, Xin Zhihong
Key Laboratory of Food Processing and Quality Control, College of Food Science and Technology, Nanjing Agricultural University, Nanjing 210095, China.
Biology (Basel). 2022 Jul 27;11(8):1129. doi: 10.3390/biology11081129.
Laccases catalyze a variety of electron-rich substrates by reducing O to HO, with O playing a vital role as the final electron acceptor in the reaction process. In the present study, a laccase gene, , was identified from through sequence-based screening. LacH5 was engineered for modification by fusion expression and promoter replacement. Results showed that the purified enzyme LacH5 exhibited strong oxidative activity towards 2,2'-azinobis(3-ehtylbenzothiazolin-6-sulfnic acid) ammonium salt (ABTS) under optimum pH and temperature conditions (pH 5.0, 60 °C) and displayed remarkable thermostability. The activity of the two fusion enzymes was enhanced significantly from 14.2 U/mg (LacH5) to 22.5 U/mg (LacH5-vgb) and 18.6 U/mg (Vgb-lacH5) toward ABTS after LacH5 fusing with hemoglobin (VHb). Three of six tested polycyclic aromatic hydrocarbons (PAHs) were significantly oxidized by two fusion laccases as compared with LacH5. More importantly, the expression level of LacH5 and fusion protein LacH5-vgb was augmented by 3.7-fold and 7.0-fold, respectively, by using a novel strong promoter replacement. The results from the current investigation provide new insights and strategies for improving the activity and expression level of bacterial laccases, and these strategies can be extended to other laccases and multicopper oxidases.
漆酶通过将O还原为HO来催化多种富电子底物,在反应过程中O作为最终电子受体起着至关重要的作用。在本研究中,通过基于序列的筛选从 中鉴定出一个漆酶基因 。通过融合表达和启动子替换对LacH5进行工程改造。结果表明,纯化后的酶LacH5在最佳pH和温度条件(pH 5.0,60°C)下对2,2'-偶氮双(3-乙基苯并噻唑啉-6-磺酸)铵盐(ABTS)表现出很强的氧化活性,并具有显著的热稳定性。LacH5与血红蛋白(VHb)融合后,两种融合酶对ABTS的活性从14.2 U/mg(LacH5)显著提高到22.5 U/mg(LacH5-vgb)和18.6 U/mg(Vgb-lacH5)。与LacH5相比,六种测试多环芳烃(PAH)中的三种被两种融合漆酶显著氧化。更重要的是,通过使用新型强启动子替换,LacH5和融合蛋白LacH5-vgb的表达水平分别提高了3.7倍和7.0倍。当前研究结果为提高细菌漆酶的活性和表达水平提供了新的见解和策略,这些策略可扩展到其他漆酶和多铜氧化酶。