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在日本纤维弧菌中,高效利用壳寡糖需要两个依赖TonB的转运蛋白和一个己糖胺酶。

Efficient chito-oligosaccharide utilization requires two TonB-dependent transporters and one hexosaminidase in Cellvibrio japonicus.

作者信息

Monge Estela C, Gardner Jeffrey G

机构信息

Department of Biological Sciences, University of Maryland, Baltimore County, Baltimore, MD, USA.

出版信息

Mol Microbiol. 2021 Aug;116(2):366-380. doi: 10.1111/mmi.14717. Epub 2021 Jun 4.

DOI:10.1111/mmi.14717
PMID:33735458
Abstract

Chitin utilization by microbes plays a significant role in biosphere carbon and nitrogen cycling, and studying the microbial approaches used to degrade chitin will facilitate our understanding of bacterial strategies to degrade a broad range of recalcitrant polysaccharides. The early stages of chitin depolymerization by the bacterium Cellvibrio japonicus have been characterized and are dependent on one chitin-specific lytic polysaccharide monooxygenase and nonredundant glycoside hydrolases from the family GH18 to generate chito-oligosaccharides for entry into metabolism. Here, we describe the mechanisms for the latter stages of chitin utilization by C. japonicus with an emphasis on the fate of chito-oligosaccharides. Our systems biology approach combined transcriptomics and bacterial genetics using ecologically relevant substrates to determine the essential mechanisms for chito-oligosaccharide transport and catabolism in C. japonicus. Using RNAseq analysis we found a coordinated expression of genes that encode polysaccharide-degrading enzymes. Mutational analysis determined that the hex20B gene product, predicted to encode a hexosaminidase, was required for efficient utilization of chito-oligosaccharides. Furthermore, two gene loci (CJA_0353 and CJA_1157), which encode putative TonB-dependent transporters, were also essential for chito-oligosaccharides utilization. This study further develops our model of C. japonicus chitin metabolism and may be predictive for other environmentally or industrially important bacteria.

摘要

微生物对几丁质的利用在生物圈碳和氮循环中起着重要作用,研究用于降解几丁质的微生物方法将有助于我们理解细菌降解多种难降解多糖的策略。日本纤维弧菌对几丁质解聚的早期阶段已得到表征,这一过程依赖于一种几丁质特异性的裂解多糖单加氧酶和来自GH18家族的非冗余糖苷水解酶,以生成壳寡糖进入代谢过程。在此,我们描述了日本纤维弧菌利用几丁质后期阶段的机制,重点是壳寡糖的去向。我们的系统生物学方法结合了转录组学和细菌遗传学,使用与生态相关的底物来确定日本纤维弧菌中壳寡糖运输和分解代谢的基本机制。通过RNAseq分析,我们发现了编码多糖降解酶的基因的协同表达。突变分析确定,预测编码氨基己糖苷酶的hex20B基因产物是有效利用壳寡糖所必需的。此外,两个编码假定的TonB依赖性转运蛋白的基因座(CJA_0353和CJA_1157)对壳寡糖的利用也至关重要。这项研究进一步完善了我们关于日本纤维弧菌几丁质代谢的模型,并且可能对其他在环境或工业上具有重要意义的细菌具有预测作用。

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