Structural and functional insights into recombinant β-glucosidase from Thermothelomyces thermophilus: Cello-oligosaccharide hydrolysis and thermostability.

IF 3.4 3区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Enzyme and Microbial Technology Pub Date : 2025-03-01 Epub Date: 2024-12-17 DOI:10.1016/j.enzmictec.2024.110572
Ana Luiza da Rocha Fortes Saraiva, Gabriela Leila Berto, Bianca Oliva, Paula Macedo Cunha, Lucas Ramos, Leandro Cristante de Oliveira, Fernando Segato
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Abstract

β-glucosidases (BGLs) are key enzymes in the depolymerization of cellulosic biomass, catalyzing the conversion of cello-oligosaccharides into glucose. This conversion is pivotal for enhancing the production of second-generation ethanol or other value-added products in biorefineries. However, the process is often cost-prohibitive due to the high enzyme loadings required. Therefore, the discovery of new highly efficient BGLs represents a significant advancement. In this study, a BGL from the glycoside hydrolase family 3 (GH3) of the thermophilic fungus Thermothelomyces thermophilus (TthBgl3A) was heterologously expressed in Aspergillus nidulans. The recombinant enzyme exhibited optimal activity at pH 5.0 and 55 °C, with noteworthy stability for up to 160 h. A distinctive, extensive loop within the catalytic cavity of TthBgl3A facilitates hydrophobic interactions that enhance the binding and hydrolysis of long cello-oligosaccharides. Consequently, TthBgl3A has proven to be an efficient enzyme for the hydrolysis lignocellulosic biomass. These findings are significant for expanding the repertoire of enzymes produced by T. thermophilus and provide new insights into the potential application of TthBgl3A in the degradation of cellulosic materials and the production of valuable compounds.

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重组β-葡萄糖苷酶的结构和功能研究:纤维寡糖水解和热稳定性。
β-葡萄糖苷酶(β-glucosidases, BGLs)是纤维素生物质解聚的关键酶,可催化纤维素低聚糖转化为葡萄糖。这种转化对于提高生物精炼厂第二代乙醇或其他增值产品的生产至关重要。然而,由于所需的高酶负荷,该过程通常成本过高。因此,新型高效bgl的发现是一个重大的进步。在本研究中,嗜热真菌Thermothelomyces thermophilus (TthBgl3A)的糖苷水解酶家族3 (GH3)中的一个BGL在中性曲霉(Aspergillus nidulans)中异源表达。重组酶在pH 5.0和55°C条件下表现出最佳的活性,在160 h下具有显著的稳定性。在TthBgl3A的催化腔内有一个独特的、广泛的环,促进疏水相互作用,增强长纤维低聚糖的结合和水解。因此,TthBgl3A已被证明是水解木质纤维素生物质的有效酶。这些发现对于扩大嗜热t菌产生的酶的种类具有重要意义,并为TthBgl3A在降解纤维素材料和生产有价值化合物方面的潜在应用提供了新的见解。
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来源期刊
Enzyme and Microbial Technology
Enzyme and Microbial Technology 生物-生物工程与应用微生物
CiteScore
7.60
自引率
5.90%
发文量
142
审稿时长
38 days
期刊介绍: Enzyme and Microbial Technology is an international, peer-reviewed journal publishing original research and reviews, of biotechnological significance and novelty, on basic and applied aspects of the science and technology of processes involving the use of enzymes, micro-organisms, animal cells and plant cells. We especially encourage submissions on: Biocatalysis and the use of Directed Evolution in Synthetic Biology and Biotechnology Biotechnological Production of New Bioactive Molecules, Biomaterials, Biopharmaceuticals, and Biofuels New Imaging Techniques and Biosensors, especially as applicable to Healthcare and Systems Biology New Biotechnological Approaches in Genomics, Proteomics and Metabolomics Metabolic Engineering, Biomolecular Engineering and Nanobiotechnology Manuscripts which report isolation, purification, immobilization or utilization of organisms or enzymes which are already well-described in the literature are not suitable for publication in EMT, unless their primary purpose is to report significant new findings or approaches which are of broad biotechnological importance. Similarly, manuscripts which report optimization studies on well-established processes are inappropriate. EMT does not accept papers dealing with mathematical modeling unless they report significant, new experimental data.
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