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Glycoside hydrolase gene transcription by Alicyclobacillus acidocaldarius during growth on wheat arabinoxylan and monosaccharides: a proposed xylan hydrolysis mechanism

机译:糖苷水解酶基因转录在麦丽西虫草酸酸度麦芽糖和单糖的生长期间:一种提出的木聚糖水解机理

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摘要

Abstract Background Metabolism of carbon bound in wheat arabinoxylan (WAX) polysaccharides by bacteria requires a number of glycoside hydrolases active toward different bonds between sugars and other molecules. Alicyclobacillus acidocaldarius is a Gram-positive thermoacidophilic bacterium capable of growth on a variety of mono-, di-, oligo-, and polysaccharides. Nineteen proposed glycoside hydrolases have been annotated in the A. acidocaldarius Type Strain ATCC27009/DSM 446 genome. Experiments were performed to understand the effect of monosaccharides on gene expression during growth on the polysaccharide, WAX. Results Molecular analysis using high-density oligonucleotide microarrays was performed on A. acidocaldarius strain ATCC27009 when growing on WAX. When a culture growing exponentially at the expense of arabinoxylan saccharides was challenged with glucose or xylose, most glycoside hydrolases were downregulated. Interestingly, regulation was more intense when xylose was added to the culture than when glucose was added, showing a clear departure from classical carbon catabolite repression demonstrated by many Gram-positive bacteria. In silico analyses of the regulated glycoside hydrolases, along with the results from the microarray analyses, yielded a potential mechanism for arabinoxylan metabolism by A. acidocaldarius. Glycoside hydrolases expressed by this strain may have broad substrate specificity, and initial hydrolysis is catalyzed by an extracellular xylanase, while subsequent steps are likely performed inside the growing cell. Conclusions Glycoside hydrolases, for the most part, appear to be found in clusters, throughout the A. acidocaldarius genome. Not all of the glycoside hydrolase genes found at loci within these clusters were regulated during the experiment, indicating that a specific subset of the 19 glycoside hydrolase genes found in A. acidocaldarius were used during metabolism of WAX. While specific functions of the glycoside hydrolases were not tested as part of the research discussed, many of the glycoside hydrolases found in the A. acidocaldarius Type Strain appear to have a broader substrate range than that represented by the glycoside hydrolase family in which the enzymes were categorized.
机译:摘要粮食群中碳的背景新陈代谢由细菌的多糖结合需要许多糖苷的糖苷水解酶对糖和其他分子之间的不同键。 alicclobacillus acidocaldarius是一种革兰氏阳性热酸化细菌,能够在各种单次,二,寡核苷酸和多糖上生长。 19个提出的糖苷水解酶已在A. acidocaldarius型菌株ATCC27009 / DSM 446基因组中注释。进行实验以了解单糖对多糖在多糖,蜡的生长过程中的作用。结果在蜡上生长时,对使用高密度寡核苷酸微阵列进行使用高密度寡核苷酸微阵列进行的分子分析。当用葡萄糖或木糖牺牲阿拉伯氧基糖的牺牲牺牲牺牲牺牲牺牲的文化遭到挑战时,下调大多数糖苷水解酶。有趣的是,当在培养物中加入到培养物中时,调节更加强烈,而不是加入葡萄糖时,显示出许多革兰氏阳性细菌的典型碳分子抑制的透明偏离。在调节的糖苷水解酶的硅分析中,随着微阵列分析的结果,通过A. acidocaldarius产生阿拉伯辛氧基代谢的潜在机制。由该菌株表示的糖苷水解酶可具有宽的底物特异性,并且通过细胞外木聚糖酶催化初始水解,而后续步骤可能在生长细胞内进行。结论糖苷水解酶最多似乎在整个A. acidocaldarius基因组中发现。并非所有在这些簇内发现的糖苷水解酶基因在实验期间受到调节,表明在蜡的代谢期间使用在A. acidocaldarius中发现的19种糖苷水解酶基因的特定子集。虽然糖苷水解酶的特定功能未被视为所讨论的研究的一部分,但是在A. acidocaldarius型菌株中发现的许多糖苷水解酶似乎具有比酶所在的糖苷水解酶系列所示的更宽的基板范围分类。

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