Wu Qianlin, Guo Qing, Yang Fo, Li Mengru, Zhu Yumeng, Xu Binpeng, Zhao Lu, Zhang Shanshan, Xie Youyu, Li Feng, Wu Xiaomin, Xu Dayong
Anhui Province Key Laboratory of Pollutant Sensitive Materials and Environmental Remediation, Huaibei Normal University, Huaibei 235000, China.
School of Life Sciences, Huaibei Normal University, Huaibei 235000, China.
Microorganisms. 2025 Apr 30;13(5):1043. doi: 10.3390/microorganisms13051043.
β-glucuronidase is an important hydrolase, which plays an important role in drug metabolism, clinical diagnostics, and biotransformation. This study focuses on the heterologous expression, isolation, purification, and its enzymatic properties of β-glucuronidase CpGUS from , as well as its application in the whole-cell transformation of unconjugated bilirubin from pig bile. A recombinant BL21(DE3)/pET-28a-CpGUS was constructed for the heterologous expression of CpGUS, with the majority of the expressed enzyme being soluble. Enzymatic analysis showed that CpGUS displayed optimal activity at pH 5.0 and 45 °C, and it rapidly lost activity at pH < 4.5. Metal ions, such as Mg and Fe, enhanced CpGUS catalysis, while Zn, K, Fe, Mn, Cu, and Na inhibited it. Notably, Cu and Fe can significantly inhibit β-glucuronidase, resulting in the complete loss of its activity. The results of the whole-cell transformation experiment show that when BL21(DE3)/ pET-28a-CpGUS at an OD of 10 was incubated at pH 5.0, a temperature of 45 °C, and a rotation speed of 200 rpm for 12 h, the hydrolysis rate of the conjugated bilirubin in pig bile reached 81.1%, the yield of unconjugated bilirubin was 76.8%, and the purity of unconjugated bilirubin was 98.2%. The three-dimensional structure of CpGUS was predicted using AlphaFold2 (AlphaFold v2.0, DeepMind Technologise Limited, London, UK), and p-Nitrophenyl-β-D-Glucuronide (pNPG) and conjugated bilirubin were then docked to the CpGUS protein model using SWISSDOCK. The best docked conformations of the CpGUS-pNPG and CpGUS-conjugated bilirubin complex systems were simulated by independent 500 ns molecular dynamics (MD) runs with the RSFF2C force field, and the binding dynamic and catalytic mechanism of each system were obtained. The results indicated that π-π stacking, hydrogen bonding, and hydrophobic interactions between the key residue Tyr472 and the benzene ring of pNPG molecules are crucial for its catalytic process. Similarly, for the binding and catalysis of conjugated bilirubin by CpGUS, the π-π stacking and hydrogen bonding and hydrophobic interactions between the sidechains of residues Phe368 and Tyr472 and the benzene ring of conjugated bilirubin play a synergistic role during its catalytic process. Their total binding free energy (∆) values were calculated to be as high as -65.05 ± 12.66 and -86.70 ± 17.18 kJ/mol, respectively. These results suggest that CpGUS possesses high binding and catalytic hydrolysis properties for both pNPG and conjugated bilirubin.
β-葡萄糖醛酸酶是一种重要的水解酶,在药物代谢、临床诊断和生物转化中发挥着重要作用。本研究聚焦于来自[具体来源未提及]的β-葡萄糖醛酸酶CpGUS的异源表达、分离、纯化及其酶学性质,以及其在猪胆汁中未结合胆红素全细胞转化中的应用。构建了重组BL21(DE3)/pET - 28a - CpGUS用于CpGUS的异源表达,所表达的酶大部分为可溶性。酶学分析表明,CpGUS在pH 5.0和45℃时表现出最佳活性,在pH < 4.5时迅速失去活性。金属离子如Mg和Fe增强CpGUS的催化作用,而Zn、K、Fe、Mn、Cu和Na则抑制其活性。值得注意的是,Cu和Fe能显著抑制β-葡萄糖醛酸酶,导致其活性完全丧失。全细胞转化实验结果表明:当OD值为1O的BL21(DE3)/pET - 28a - CpGUS在pH 5.0、温度45℃、转速200 rpm下孵育12 h时,猪胆汁中结合胆红素的水解率达到81.1%,未结合胆红素的产率为76.8%,未结合胆红素的纯度为98.2%。使用AlphaFold2(AlphaFold v2.0,DeepMind Technologise Limited,英国伦敦)预测了CpGUS的三维结构,随后使用SWISSDOCK将对硝基苯基-β-D-葡萄糖醛酸苷(pNPG)和结合胆红素对接至CpGUS蛋白模型。使用RSFF2C力场对CpGUS - pNPG和CpGUS - 结合胆红素复合体系的最佳对接构象进行了500 ns独立分子动力学(MD)模拟运行,得到了每个体系的结合动力学和催化机制。结果表明,关键残基Tyr472与pNPG分子苯环之间的π-π堆积、氢键和疏水相互作用对其催化过程至关重要。同样,对于CpGUS对结合胆红素的结合和催化作用,残基Phe368和Tyr472的侧链与结合胆红素苯环之间的π-π堆积、氢键和疏水相互作用在其催化过程中起协同作用。它们的总结合自由能(∆)值经计算分别高达-65.05±12.66和-86.70±17.18 kJ/mol。这些结果表明,CpGUS对pNPG和结合胆红素均具有高结合和催化水解特性。