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溶剂梭菌在丁醇胁迫条件下生长的营养需求的荟萃分析和功能验证以及 D-葡萄糖和 D-木糖的共利用。

Meta-analysis and functional validation of nutritional requirements of solventogenic Clostridia growing under butanol stress conditions and coutilization of D-glucose and D-xylose.

机构信息

Department of Microbiology, North Carolina State University, 1552 Thomas Hall, Box 7615, Raleigh, NC 27695, USA.

出版信息

Appl Environ Microbiol. 2011 Jul;77(13):4473-85. doi: 10.1128/AEM.00116-11. Epub 2011 May 20.

DOI:10.1128/AEM.00116-11
PMID:21602379
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3127714/
Abstract

Recent advances in systems biology, omics, and computational studies allow us to carry out data mining for improving biofuel production bioprocesses. Of particular interest are bioprocesses that center on microbial capabilities to biotransform both the hexose and pentose fractions present in crop residues. This called for a systematic exploration of the components of the media to obtain higher-density cultures and more-productive fermentation operations than are currently found. By using a meta-analysis approach of the transcriptional responses to butanol stress, we identified the nutritional requirements of solvent-tolerant strain Clostridium beijerinckii SA-1 (ATCC 35702). The nutritional requirements identified were later validated using the chemostat pulse-and-shift technique. C. beijerinckii SA-1 was cultivated in a two-stage single-feed-stream continuous production system to test the proposed validated medium formulation, and the coutilization of D-glucose and D-xylose was evaluated by taking advantage of the well-known ability of solventogenic clostridia to utilize a large variety of carbon sources such as mono-, oligo-, and polysaccharides containing pentose and hexose sugars. Our results indicated that C. beijerinckii SA-1 was able to coferment hexose/pentose sugar mixtures in the absence of a glucose repression effect. In addition, our analysis suggests that the solvent and acid resistance mechanisms found in this strain are differentially regulated compared to strain NRRL B-527 and are outlined as the basis of the analysis toward optimizing butanol production.

摘要

系统生物学、组学和计算研究的最新进展使我们能够进行数据挖掘,以改进生物燃料生产生物工艺。特别感兴趣的是那些以微生物转化农作物残体中存在的六碳糖和五碳糖为中心的生物工艺。这就需要系统地探索培养基的成分,以获得比目前更高密度的培养物和更具生产力的发酵操作。通过使用丁醇胁迫转录反应的荟萃分析方法,我们确定了耐溶剂菌株 Clostridium beijerinckii SA-1(ATCC 35702)的营养需求。后来使用恒化器脉冲和转换技术验证了所确定的营养需求。Clostridium beijerinckii SA-1 在两级单进料流连续生产系统中进行培养,以测试所提出的经验证的培养基配方,并利用溶剂生成梭菌利用各种碳源的已知能力,例如含有戊糖和己糖的单糖、寡糖和多糖,评估 D-葡萄糖和 D-木糖的共发酵。我们的结果表明,Clostridium beijerinckii SA-1 能够在没有葡萄糖抑制作用的情况下共发酵六碳糖/五碳糖混合物。此外,我们的分析表明,与 NRRL B-527 菌株相比,该菌株中发现的溶剂和酸抗性机制是不同调节的,并概述了优化丁醇生产的分析基础。

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