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深海来源 GH16 家族昆布多糖酶的水解和转糖苷作用的分子见解。

Molecular insights into the hydrolysis and transglycosylation of a deep-sea -derived GH16 family laminarinase.

机构信息

CAS Key Laboratory of Tropical Marine Bio-resources and Ecology, Guangdong Key Laboratory of Marine Materia Medica, South China Sea Institute of Oceanology, Guangdong Provincial Observation and Research Station for Coastal Upwelling Ecosystem, Chinese Academy of Sciences, Guangzhou, China.

University of the Chinese Academy of Sciences, Beijing, China.

出版信息

Appl Environ Microbiol. 2024 Oct 23;90(10):e0094224. doi: 10.1128/aem.00942-24. Epub 2024 Sep 17.

Abstract

The biochemical and structural characteristics of Lam, a laminarinase from deep-sea , have been extensively elucidated, unveiling the fundamental molecular mechanisms governing substrate recognition and enzymatic catalysis. Lam functions as an exo-laminarinase with the ability to sequentially hydrolyze laminarin, cleaving glucose units individually. Notably, Lam exhibits proficient transglycosylation capabilities, utilizing various sugar alcohols as acceptors, with lyxose, in particular, yielding exclusively transglycosylated products. Structural analysis of both apo-Lam and its laminarin oligosaccharide-bound complex revealed significant conformational alterations in active residues upon substrate binding. Moreover, pivotal residues involved in substrate recognition were identified, with subsequent mutation assays indicating the contribution of positive subsites in modulating exo-hydrolysis and transglycosidic activities. These results enhance our comprehension of laminarin cycling mechanisms by marine , while also providing essential enzyme components for laminarin hetero-oligosaccharide synthesis.IMPORTANCEThe ubiquitous , with distinctive physiological traits, exert a significant influence on global carbon and nitrogen fluxes. Their intimate association with algae suggests a propensity for efficient polysaccharide degradation; however, research on glycoside hydrolases derived from remains scarce. Herein, we unveil the GH16 family laminarinase Lam from deep-sea , shedding light on its catalytic mechanisms underlying hydrolysis and transglycosylation. Our findings elucidate the enzymatic pathways governing the marine laminarin cycle orchestrated by thereby fostering the exploration of novel polysaccharide hydrolases with promising practical implications.

摘要

深海来源的岩藻聚糖酶 Lam 的生化和结构特征已得到广泛阐明,揭示了底物识别和酶催化的基本分子机制。Lam 作为一种外切岩藻聚糖酶,能够顺序水解岩藻聚糖,逐个切割葡萄糖单位。值得注意的是,Lam 表现出高效的转糖苷能力,能够利用各种糖醇作为受体,其中以木糖醇为唯一的转糖苷产物。对 apo-Lam 和其岩藻糖寡糖结合复合物的结构分析表明,在底物结合时,活性残基发生了显著的构象变化。此外,确定了参与底物识别的关键残基,随后的突变分析表明,正亚基在调节外切水解和转糖苷活性方面具有重要作用。这些结果通过海洋微生物增强了我们对岩藻聚糖循环机制的理解,同时也为岩藻糖异寡糖的合成提供了必需的酶组分。重要性具有独特的生理特征,对全球碳氮通量有重要影响。它们与藻类的密切关系表明其具有高效降解多糖的能力;然而,对海洋来源的糖苷水解酶的研究仍然很少。本文首次揭示了深海来源的 GH16 家族岩藻聚糖酶 Lam,阐明了其水解和转糖苷的催化机制。我们的研究结果阐明了海洋岩藻聚糖循环的酶促途径,由 Lam 调控,从而促进了具有潜在应用价值的新型多糖水解酶的探索。

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