破译散囊菌 N-乙酰葡糖胺脱乙酰酶的催化能力和机制

IF 3.5 2区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Biotechnology and Bioengineering Pub Date : 2024-11-26 DOI:10.1002/bit.28894
Wentao Yang, Xiao Chen, Li Pang, Hong Tian, Liang Yang, Bo Xia
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引用次数: 0

摘要

氨基葡萄糖(GlcN)是一种广泛使用的氨基单糖。传统上,它是通过对环境造成威胁的化学过程从 N-乙酰葡糖胺(GlcNAc)合成的。为了寻求一种更环保的替代方法,我们的研究探索了一种由散盘菌衍生的脱乙酰化酶(Pd-nagA)的生物催化,展示了其作为 GlcN 生产催化剂的功效。因此,本研究对 Pd-nagA 进行了全面的表征,仔细研究了它的酶学行为,并详细探讨了其脱乙酰机制。利用异源表达方法生产和分离了 Pd-nagA,随后对其酶活性进行了动力学评估。通过整合经典分子动力学、量子力学/分子力学模拟、漏斗元动力学和即时概率增强采样技术,研究了该酶与其底物之间复杂的相互作用,从而阐明了精确的去乙酰化途径。严格的计算分析结果表明,Pd-nagA 对 GlcNAc 具有良好的特异性和高效性,且周转率高。我们确定了反应的核心催化残基,并详细阐述了基本的量子反应机制。我们的研究结果提出了一种利用生态友好型生物催化生产 GlcN 的方法,将 Pd-nagA 定位于工业应用的前沿,不仅因为它具有显著的催化能力,还因为它具有酶优化的潜力。
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Deciphering the Catalytic Proficiency and Mechanism of the N-Acetylglucosamine Deacetylase From Pantoea dispersa.

Glucosamine (GlcN) is a widely utilized amino monosaccharide. It is traditionally synthesized from N-acetylglucosamine (GlcNAc) via chemical processes that pose environmental threats. In pursuit of a greener alternative, our investigation explored biocatalysis with a Pantoea dispersa derived deacetylase (Pd-nagA), showcasing its efficacy as a catalyst in GlcN production. As a result, this work provides a comprehensive characterization of Pd-nagA, scrutinizes its enzymatic behavior, and delves into the deacetylation mechanism in detail. Heterologous expression methods were utilized for the production and isolation of Pd-nagA, followed by a kinetic evaluation highlighting its enzymatic activity. The complex interactions between the enzyme and its substrate were investigated by integrating classical molecular dynamics, quantum mechanics/molecular mechanics simulations, funnel metadynamics, and on-the-fly probability enhanced sampling techniques, thereby elucidating the precise deacetylation pathway. Rigorous computational analysis results demonstrated that Pd-nagA exhibited promising specificity and efficiency for GlcNAc with a high turnover rate. The catalytic residues central to the reaction were identified, and the underlying quantum reaction mechanism was detailed. Our findings suggest an approach to GlcN production using eco-friendly biocatalysis, positioning Pd-nagA at the forefront of industrial application not only because of its remarkable catalytic capabilities but also due to its potential for enzyme optimization.

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来源期刊
Biotechnology and Bioengineering
Biotechnology and Bioengineering 工程技术-生物工程与应用微生物
CiteScore
7.90
自引率
5.30%
发文量
280
审稿时长
2.1 months
期刊介绍: Biotechnology & Bioengineering publishes Perspectives, Articles, Reviews, Mini-Reviews, and Communications to the Editor that embrace all aspects of biotechnology. These include: -Enzyme systems and their applications, including enzyme reactors, purification, and applied aspects of protein engineering -Animal-cell biotechnology, including media development -Applied aspects of cellular physiology, metabolism, and energetics -Biocatalysis and applied enzymology, including enzyme reactors, protein engineering, and nanobiotechnology -Biothermodynamics -Biofuels, including biomass and renewable resource engineering -Biomaterials, including delivery systems and materials for tissue engineering -Bioprocess engineering, including kinetics and modeling of biological systems, transport phenomena in bioreactors, bioreactor design, monitoring, and control -Biosensors and instrumentation -Computational and systems biology, including bioinformatics and genomic/proteomic studies -Environmental biotechnology, including biofilms, algal systems, and bioremediation -Metabolic and cellular engineering -Plant-cell biotechnology -Spectroscopic and other analytical techniques for biotechnological applications -Synthetic biology -Tissue engineering, stem-cell bioengineering, regenerative medicine, gene therapy and delivery systems The editors will consider papers for publication based on novelty, their immediate or future impact on biotechnological processes, and their contribution to the advancement of biochemical engineering science. Submission of papers dealing with routine aspects of bioprocessing, description of established equipment, and routine applications of established methodologies (e.g., control strategies, modeling, experimental methods) is discouraged. Theoretical papers will be judged based on the novelty of the approach and their potential impact, or on their novel capability to predict and elucidate experimental observations.
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