Department of Microbiology, Guru Nanak Dev University, Amritsar, 143005, Punjab, India.
Center for Structural and Functional Genomics, Concordia University, 7141 Sherbrooke Street West, Montreal, QC, H4B 1R6, Canada.
Bioprocess Biosyst Eng. 2024 Apr;47(4):567-582. doi: 10.1007/s00449-024-02988-4. Epub 2024 Mar 12.
The present study reports a highly thermostable β-glucosidase (GH3) from Rasamsonia emersonii that was heterologously expressed in Pichia pastoris. Extracellular β-glucosidase was purified to homogeneity using single step affinity chromatography with molecular weight of ~ 110 kDa. Intriguingly, the purified enzyme displayed high tolerance to inhibitors mainly acetic acid, formic acid, ferulic acid, vanillin and 5-hydroxymethyl furfural at concentrations exceeding those present in acid steam pretreated rice straw slurry used for hydrolysis and subsequent fermentation in 2G ethanol plants. Characteristics of purified β-glucosidase revealed the optimal activity at 80 °C, pH 5.0 and displayed high thermostability over broad range of temperature 50-70 °C with maximum half-life of ~ 60 h at 50 °C, pH 5.0. The putative transglycosylation activity of β-glucosidase was appreciably enhanced in the presence of methanol as an acceptor. Using the transglycosylation ability of β-glucosidase, the generated low cost mixed glucose disaccharides resulted in the increased induction of R. emersonii cellulase under submerged fermentation. Scaling up the recombinant protein production at fermenter level using temporal feeding approach resulted in maximal β-glucosidase titres of 134,660 units/L. Furthermore, a developed custom made enzyme cocktail consisting of cellulase from R. emersonii mutant M36 supplemented with recombinant β-glucosidase resulted in significantly enhanced hydrolysis of pretreated rice straw slurry from IOCL industries (India). Our results suggest multi-faceted β-glucosidase from R. emersonii can overcome obstacles mainly high cost associated enzyme production, inhibitors that impair the sugar yields and thermal inactivation of enzyme.
本研究报道了一种来自 Rasamsonia emersonii 的高度耐热β-葡萄糖苷酶(GH3),该酶在毕赤酵母中异源表达。使用一步亲和层析法将细胞外β-葡萄糖苷酶纯化至均质,分子量约为 110 kDa。有趣的是,纯化的酶对抑制剂具有很高的耐受性,主要是乙酸、甲酸、阿魏酸、香草醛和 5-羟甲基糠醛,其浓度超过了用于水解和随后在 2G 乙醇工厂发酵的酸蒸汽预处理稻秸浆中存在的浓度。纯化的β-葡萄糖苷酶的特性表明,在 80°C、pH 5.0 下活性最高,在 50-70°C 的宽温度范围内显示出很高的热稳定性,在 50°C、pH 5.0 下的最大半衰期约为 60 h。β-葡萄糖苷酶的假定转糖苷活性在甲醇作为受体存在时明显增强。利用β-葡萄糖苷酶的转糖苷能力,生成的低成本混合葡萄糖二糖导致在液体深层发酵下 R. emersonii 纤维素酶的诱导增加。使用时间馈送方法在发酵罐水平上放大重组蛋白生产,导致β-葡萄糖苷酶的最大酶活达到 134,660 单位/L。此外,开发了一种由 IOCL 工业(印度)的突变体 M36 纤维素酶和重组β-葡萄糖苷酶组成的定制酶混合物,显著提高了预处理稻秸浆的水解效率。我们的研究结果表明,来自 R. emersonii 的多功能β-葡萄糖苷酶可以克服主要与酶生产相关的高成本、抑制糖产量的抑制剂和酶的热失活等障碍。