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首页> 外文期刊>Proceedings of the National Academy of Sciences of the United States of America >Substrate-driven gene expression in Roseburia inulinivorans: Importance of inducible enzymes in the utilization of inulin and starch
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Substrate-driven gene expression in Roseburia inulinivorans: Importance of inducible enzymes in the utilization of inulin and starch

机译:玫瑰蔷薇属中底物驱动的基因表达:诱导酶在菊粉和淀粉利用中的重要性

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摘要

Roseburia inulinivorans is a recently identified motile representative of the Firmicutes that contributes to butyrate formation from a variety of dietary polysaccharide substrates in the human large intestine. Microarray analysis was used here to investigate substrate-driven gene-expression changes in R. inulinivorans A2-194. A cluster of fructo-oligosaccharide/inulin utilization genes induced during growth on inulin included one encoding a p-fructofuranosidase protein that was prominent in the proteome of inulin-grown cells. This cluster also included a 6-phosphofructokinase and an ABC transport system, whereas a distinct inulin-induced 1-phosphofruc-tokinase was linked to a fructose-specific phosphoenolpyruvate-dependent sugar phosphotransferase system (PTS II transport enzyme). Real-time PCR analysis showed that the p-f ructof uranosidase and adjacent ABC transport protein showed greatest induction during growth on inulin, whereas the 1-phosphofructokinase enzyme and linked sugar phosphotransferase transport system were most strongly up-regulated during growth on fructose, indicating that these two clusters play distinct roles in the use of inulin. The R. inulinivorans p-fructofuranosidase was overexpressed in Escher-ichia coli and shown to hydrolyze fructans ranging from inulin down to sucrose, with greatest activity on fructo-oligosaccharides. Genes induced on starch included the major extracellular α-amylase and two distinct α-glucanotransferases together with a gene encoding a flagellin protein. The latter response may be concerned with improving bacterial access to insoluble starch particles.
机译:玫瑰果蔷薇(Roseburia inulinivorans)是Firmicutes的最近被鉴定为运动的代表,它有助于人大肠中多种膳食多糖底物形成丁酸酯。此处使用微阵列分析来研究R. inulinivorans A2-194中底物驱动的基因表达变化。在菊糖上生长期间诱导的低聚果糖/菊粉利用基因簇包括一个编码p-果糖呋喃糖苷酶蛋白的蛋白,该蛋白在菊糖生长的细胞的蛋白质组中突出。该簇还包括6-磷酸果糖激酶和ABC转运系统,而独特的菊粉诱导的1-磷酸果糖-激酶与果糖特异性磷酸烯醇丙酮酸依赖性糖磷酸转移酶系统(PTS II转运酶)相连。实时PCR分析表明,在菊糖生长过程中,pf ructof尿嘧啶酶和邻近的ABC转运蛋白表现出最大的诱导作用,而在果糖上生长期间,1-磷酸果糖激酶和连接的糖磷酸转移酶转运系统受到最强烈的上调,表明这些两个菊粉在菊粉的使用中起着不同的作用。在大肠杆菌中过表达菊粉菌对果糖呋喃糖苷酶,并显示其水解从菊粉到蔗糖的果糖,对果糖寡糖的活性最大。在淀粉上诱导的基因包括主要的细胞外α-淀粉酶和两种不同的α-葡聚糖转移酶以及编码鞭毛蛋白的基因。后一种反应可能与改善细菌接触不溶性淀粉颗粒有关。

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  • 作者单位

    Rowett Institute of Nutrition and Health, University of Aberdeen, Bucksburn, Aberdeen AB21 9SB, United Kingdom;

    Rowett Institute of Nutrition and Health, University of Aberdeen, Bucksburn, Aberdeen AB21 9SB, United Kingdom;

    Rowett Institute of Nutrition and Health, University of Aberdeen, Bucksburn, Aberdeen AB21 9SB, United Kingdom;

    Rowett Institute of Nutrition and Health, University of Aberdeen, Bucksburn, Aberdeen AB21 9SB, United Kingdom;

    Rowett Institute of Nutrition and Health, University of Aberdeen, Bucksburn, Aberdeen AB21 9SB, United Kingdom;

    Rowett Institute of Nutrition and Health, University of Aberdeen, Bucksburn, Aberdeen AB21 9SB, United Kingdom;

    Biomathematics and Statistics Scotland, Rowett Institute of Nutrition and Health, University of Aberdeen, Bucksburn, Aberdeen AB21 9SB, United Kingdom;

    Rowett Institute of Nutrition and Health, University of Aberdeen, Bucksburn, Aberdeen AB21 9SB, United Kingdom;

    Rowett Institute of Nutrition and Health, University of Aberdeen, Bucksburn, Aberdeen AB21 9SB, United Kingdom;

    Rowett Institute of Nutrition and Health, University of Aberdeen, Bucksburn, Aberdeen AB21 9SB, United Kingdom;

    Rowett Institute of Nutrition and Health, University of Aberdeen, Bucksburn, Aberdeen AB21 9SB, United Kingdom;

  • 收录信息 美国《科学引文索引》(SCI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    anaerobic gut bacteria; differential gene expression; fructo-oligosaccharides; butyrate; prebiotic;

    机译:厌氧菌;差异基因表达;低聚果糖;丁酸;益生元;

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