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Genomic Potential for Polysaccharide Deconstruction in Bacteria

机译:细菌中多糖解构的基因组潜力

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Glycoside hydrolases are important enzymes that support bacterial growth by enabling the degradation of polysaccharides (e.g., starch, cellulose, xylan, and chitin) in the environment. Presently, little is known about the overall phylogenetic distribution of the genomic potential to degrade these polysaccharides in bacteria. However, knowing the phylogenetic breadth of these traits may help us predict the overall polysaccharide processing in environmental microbial communities. In order to address this, we identified and analyzed the distribution of 392,166 enzyme genes derived from 53 glycoside hydrolase families in 8,133 sequenced bacterial genomes. Enzymes for oligosaccharides and starch/glycogen were observed in most taxonomic groups, whereas glycoside hydrolases for structural polymers (i.e., cellulose, xylan, and chitin) were observed in clusters of relatives at taxonomic levels ranging from species to genus as determined by consenTRAIT. The potential for starch and glycogen processing, as well as oligosaccharide processing, was observed in 85% of the strains, whereas 65% possessed enzymes to degrade some structural polysaccharides (i.e., cellulose, xylan, or chitin). Potential degraders targeting one, two, and three structural polysaccharides accounted for 22.6, 32.9, and 9.3% of genomes analyzed, respectively. Finally, potential degraders targeting multiple structural polysaccharides displayed increased potential for oligosaccharide deconstruction. This study provides a framework for linking the potential for polymer deconstruction with phylogeny in complex microbial assemblages.
机译:糖苷水解酶是通过使环境中的多糖(例如淀粉,纤维素,木聚糖和几丁质)降解而支持细菌生长的重要酶。目前,关于降解细菌中这些多糖的基因组潜力的整体系统发育分布知之甚少。但是,了解这些特征的系统发育广度可能有助于我们预测环境微生物群落中的总多糖加工。为了解决这个问题,我们鉴定并分析了在8133个测序细菌基因组中来自53个糖苷水解酶家族的392166个酶基因的分布。在大多数分类学类别中都观察到了寡糖和淀粉/糖原的酶,而通过consenTRAIT确定,从物种到属的分类学水平的亲戚群中观察到了结构聚合物的糖苷水解酶(即纤维素,木聚糖和几丁质)。在85%的菌株中观察到了淀粉和糖原加工以及寡糖加工的潜力,而65%的菌株拥有降解某些结构性多糖(即纤维素,木聚糖或几丁质)的酶。针对一种,两种和三种结构多糖的潜在降解剂分别占所分析基因组的22.6、32.9和9.3%。最后,靶向多种结构多糖的潜在降解物表现出增加的低聚糖解构潜力。这项研究提供了一个框架,用于将复杂的微生物组合物中聚合物解构的潜力与系统发育联系起来。

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