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首页> 外文期刊>Journal of industrial microbiology & biotechnology >Genomic and physiological analyses reveal that extremely thermophilic Caldicellulosiruptor changbaiensis deploys uncommon cellulose attachment mechanisms
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Genomic and physiological analyses reveal that extremely thermophilic Caldicellulosiruptor changbaiensis deploys uncommon cellulose attachment mechanisms

机译:基因组和生理分析表明,极嗜热的Caldicellulosiruptor Changbaiensis部署罕见的纤维素附着机制

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摘要

The genus Caldicellulosiruptor is comprised of extremely thermophilic, heterotrophic anaerobes that degrade plant biomass using modular, multifunctional enzymes. Prior pangenome analyses determined that this genus is genetically diverse, with the current pangenome remaining open, meaning that new genes are expected with each additional genome sequence added. Given the high biodiversity observed among the genus Caldicellulosiruptor, we have sequenced and added a 14th species, Caldicellulosiruptor changbaiensis, to the pangenome. The pangenome now includes 3791 ortholog clusters, 120 of which are unique to C. changbaiensis and may be involved in plant biomass degradation. Comparisons between C. changbaiensis and Caldicellulosiruptor bescii on the basis of growth kinetics, cellulose solubilization and cell attachment to polysaccharides highlighted physiological differences between the two species which are supported by their respective gene inventories. Most significantly, these comparisons indicated that C. changbaiensis possesses uncommon cellulose attachment mechanisms not observed among the other strongly cellulolytic members of the genus Caldicellulosiruptor.
机译:Caldicellulosiruptor属于极其嗜热的异养的厌氧,其使用模块化多官能酶降解植物生物质。先前的Pangenome分析确定该属性是遗传多样化的,目前的Pangenome仍然是开放的,这意味着每种另外的基因组序列都会增加新的基因。鉴于Caldicellulosuporupor属中观察到的高生物多样性,我们已经测序并添加了第14种,Caldicellulosiruptor Changbaiensis,康复到Pangenome。 Pangenome现在包括3791个Ortholog簇,其中120个是C. changbaiensis的独特,并且可能参与植物生物质降解。 C.常息和Caldicellulosiruptor Bescii的比较基于生长动力学,纤维素溶解和细胞附着于多糖的基础上,突出了其各自基因库存支持的两种物种之间的生理差异。最显着的是,这些比较表明,C.长白义患者具有在钙霉素属植物属的其他强纤维素分解成员中未观察到未常见的纤维素附着机制。

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