bioRxiv · 10.64898/2025.12.21.695781
A Highly Thermostable and Novel GH5 Endoglucanase from Bacillus sp. Strain BS with Enhanced Biomass Saccharification Potential in Seawater
Abstract
The efficient enzymatic conversion of lignocellulosic biomass to glucose is crucial for biofuel production, with enzyme costs being a significant barrier to commercialization. Multifunctional enzymes that reduce enzyme components can improve efficiency. In this study, we amplified and sequenced a gene from Bacillus sp. strain BS, which showed 89.8% identity with bacterial endoglucanase Q6YK34. This putative novel endoglucanase, BsEG2, is a GH5-like endoglucanase, with optimal activity at pH 6.0 and 55 {square}, and efficiently hydrolyzes amorphous and crystalline cellulose, including pre-treated and untreated sugarcane bagasse. Kinetics on carboxymethyl cellulose (CMC) indicate high substrate binding efficiency (apparent Vmax of 148.9 {micro}M min-1, a Km of 24.9 mg mL-1, and a kcat of 517 s-1). BsEG2 hydrolyzes long cellulosic chains, oligosaccharides, and cellobiose to produce glucose, demonstrating multifunctionality. It exhibits remarkable thermal stability, retaining over 90% activity after 15 days at 55 {degrees}C. BsEG2 also retains activity in high salts and ionic liquids, and is not inhibited by cellobiose, even at 200 mM, unlike other endoglucanases and cellobiohydrolases. Furthermore, BsEG2 functions in seawater, reducing freshwater footprint in biofuel production. BsEG2 is a promising candidate for a cost-effective enzyme formulation for glucose production from lignocellulosic biomass, supporting downstream glucose-fed metabolic pathways.
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Ghosh, D., Konar, A., Gao, Y. Q., Mondal, M., Sinha, S. K., Datta, S., Mohan, S. V.. 2025-12-22. A Highly Thermostable and Novel GH5 Endoglucanase from Bacillus sp. Strain BS with Enhanced Biomass Saccharification Potential in Seawater. https://doi.org/10.64898/2025.12.21.695781
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