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首页> 外文期刊>Archives of microbiology >The central carbohydrate metabolism of the hyperthermophilic crenarchaeote Thermoproteus tenax: pathways and insights into their regulation.
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The central carbohydrate metabolism of the hyperthermophilic crenarchaeote Thermoproteus tenax: pathways and insights into their regulation.

机译:嗜热性角膜古菌Thermoproteus tenax的中央碳水化合物代谢:调控途径和见解。

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摘要

Although the complexity and modifications of the archaeal central carbohydrate metabolism (CCM) are well established, the knowledge about its regulation is rather limited. The facultatively heterotrophic, hyperthermophilic crenarchaeote Thermoproteus tenax utilizes a modified version of the reversible Embden-Meyerhof-Parnas (EMP) and the catabolic, branched Entner-Doudoroff (ED) pathway for glucose metabolism. Glucose is completely oxidized to carbon dioxide via the oxidative tricarboxylic acid (TCA) cycle, which is supposedly used in the reductive direction for carbon dioxide fixation under autotrophic growth conditions. Elemental sulfur is used as final electron acceptor. The CCM of T. tenax has been well studied on protein level as well as on gene level by performing a focused transcriptional analysis (CCM DNA microarray). In contrast to the classical pathways found in Bacteria and Eucarya allosteric regulation seems to play a minor role, therefore emphasizing the important role of regulation on transcript level in T. tenax. Whereas the EMP pathway and the TCA cycle show a highly coordinated regulation on gene level, the catabolic, branched ED pathway reveals no strong regulation. The CCM pathways in T. tenax and the current understanding of their regulation are presented.
机译:尽管已经很好地确定了古细菌中央碳水化合物代谢(CCM)的复杂性和修饰性,但有关其调控的知识却十分有限。兼性的异养性,超嗜热的月球菌Thermoproteus tenax利用可逆的Embden-Meyerhof-Parnas(EMP)和分解代谢的分支Entner-Doudoroff(ED)途径进行葡萄糖代谢。葡萄糖通过氧化三羧酸(TCA)循环被完全氧化为二氧化碳,该循环被认为是在还原性方向上用于自养生长条件下的二氧化碳固定。元素硫被用作最终的电子受体。通过进行集中的转录分析(CCM DNA微阵列),已经在蛋白质水平以及基因水平上对T. tenax的CCM进行了很好的研究。与细菌和Eucarya中发现的经典途径相反,变构调节似乎起着较小的作用,因此强调了调节T. tenax转录水平的重要作用。尽管EMP途径和TCA循环在基因水平上显示出高度协调的调控,但分解代谢的分支ED途径却未显示出强烈的调控。介绍了T. tenax中的CCM途径及其目前的调控方式。

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