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Discovery and structural characterization of a novel glycosidase family of marine origin

机译:海洋起源的新型糖苷酶家族的发现和结构表征

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摘要

The genomic data on heterotrophic marine bacteria suggest the crucial role that microbes play in the global carbon cycle. However, the massive presence of hypothetical proteins hampers our understanding of the mechanisms by which this carbon cycle is carried out. Moreover, genomic data from marine microorganisms are essentially annotated in the light of the biochemical knowledge accumulated on bacteria and fungi which decompose terrestrial plants. However marine algal polysaccharides clearly differ from their terrestrial counterparts, and their associated enzymes usually constitute novel protein families. In this study, we have applied a combination of bioinformatics, targeted activity screening and structural biology to characterize a hypothetical protein from the marine bacterium Zobellia galactanivorans, which is distantly related to GH43 family. This protein is in fact a 1,3-α-3,6-anhydro-l-galactosidase (AhgA) which catalyses the last step in the degradation pathway of agars, a family of polysaccharides unique to red macroalgae. AhgA adopts a β-propeller fold and displays a zinc-dependent catalytic machinery. This enzyme is the first representative of a new family of glycoside hydrolases, especially abundant in coastal waters. Such genes of marine origin have been transferred to symbiotic microbes associated with marine fishes, but also with some specific human populations.
机译:有关异养海洋细菌的基因组数据表明,微生物在全球碳循环中起着至关重要的作用。然而,大量假设蛋白质的存在阻碍了我们对碳循环进行机理的理解。此外,基本上根据在分解陆地植物的细菌和真菌上积累的生化知识来注释来自海洋微生物的基因组数据。但是,海洋藻类多糖与陆地藻类明显不同,其相关酶通常构成新的蛋白质家族。在这项研究中,我们已经应用了生物信息学,靶向活性筛选和结构生物学相结合的方法来表征来自与GH43家族密切相关的海洋细菌Zobellia galactanivorans的一种假设蛋白。该蛋白质实际上是一种1,3-α-3,6-脱水-1-半乳糖苷酶(AhgA),可催化琼脂的降解途径的最后一步,琼脂是红色大藻类特有的多糖家族。 AhgA采用β螺旋桨折叠,并显示锌依赖性催化机制。该酶是糖苷水解酶新家族的第一个代表,在沿海水域尤其丰富。这种海洋起源的基因已被转移到与海洋鱼类以及某些特定人群相关的共生微生物中。

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