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Transcriptional regulation of carbohydrate utilization pathways in the Bifidobacterium genus

机译:双歧杆菌属碳水化合物利用途径的转录调控

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摘要

Bifidobacteria, which represent common commensals of mammalian gut, are believed to have positive effects on human health. The influence of certain non-digestible carbohydrates (and their use as so-called prebiotics) on growth and metabolic activity of bifidobacteria is of increasing interest; however, mechanisms of transcriptional control of carbohydrate metabolism are poorly understood in these species. We used a comparative genomics approach to reconstruct carbohydrate utilization pathways and transcriptional regulons in 10 Bifidobacterium genomes. Analysis of regulatory gene regions revealed candidate DNA motifs and reconstructed regulons for 268 transcription factors from the LacI, ROK, DeoR, AraC, GntR, and TetR families that form 64 orthologous groups of regulators. Most of the reconstructed regulons are local and control specific catabolic pathways for host- and diet-derived glycans and monosaccharides. Mosaic distributions of many of these local regulators across Bifidobacterium species correlate with distribution of corresponding catabolic pathways. In contrast, the maltose, galactose, sucrose, and fructose regulons, as well as a novel global LacI-family regulator that is predicted to control the central carbohydrate metabolism and arabinose catabolism genes, are universally present in all 10 studied bifidobacteria. A novel group of TetR-family regulators presumably controls the glucoside and galactoside utilization pathways. Paralogs of the ribose repressor RbsR control the pyrimidine nucleoside utilization genes. Multiple paralogs of the maltose regulator MalR co-regulate large sets of genes involved in maltodextrin utilization. The inferred metabolic regulons provide new insights on diverse carbohydrate utilization networks in bifidobacteria that can be employed in metabolic modeling, phenotype prediction and the rational development of novel prebiotics.
机译:代表哺乳动物肠道常见特征的双歧杆菌被认为对人类健康具有积极作用。某些不可消化的碳水化合物(及其用作所谓的益生元)对双歧杆菌的生长和代谢活性的影响日益引起人们的关注;然而,在这些物种中对碳水化合物代谢的转录控制机制了解甚少。我们使用了比较基因组学方法来重建10种双歧杆菌基因组中的碳水化合物利用途径和转录调控子。对调节基因区域的分析揭示了来自LacI,ROK,DeoR,AraC,GntR和TetR家族的268个转录因子的候选DNA基序和重建的调控子,这些家族形成了64个直系同源的调节子群。大多数重建的调节子是宿主和饮食来源的聚糖和单糖的局部且控制特定的分解代谢途径。跨双歧杆菌物种的许多这些局部调节物的马赛克分布与相应分解代谢途径的分布相关。相比之下,麦芽糖,半乳糖,蔗糖和果糖调节剂,以及新型的全球LacI家族调节剂,预计将控制中央碳水化合物的代谢和阿拉伯糖分解代谢基因,在所有10个研究的双歧杆菌中普遍存在。一组新的TetR-家族调节剂可能控制了糖苷和半乳糖苷的利用途径。核糖阻遏物RbsR的旁系同源物控制嘧啶核苷利用基因。麦芽糖调节剂MalR的多个旁系同源物共同调节与麦芽糖糊精利用有关的大量基因。推测的代谢调控因子提供了对双歧杆菌中各种碳水化合物利用网络的新见解,可用于代谢建模,表型预测和新型益生元的合理开发。

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