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本文引用的文献

1
Elimination of hydrogenase active site assembly blocks H2 production and increases ethanol yield in Clostridium thermocellum.消除氢化酶活性部位组装块会抑制氢气生成并提高产热梭菌的乙醇产量。
Biotechnol Biofuels. 2015 Feb 12;8:20. doi: 10.1186/s13068-015-0204-4. eCollection 2015.
2
Functional diversity of carbohydrate-active enzymes enabling a bacterium to ferment plant biomass.碳水化合物活性酶的功能多样性使细菌能够发酵植物生物质。
PLoS Genet. 2014 Nov 13;10(11):e1004773. doi: 10.1371/journal.pgen.1004773. eCollection 2014 Nov.
3
Fungal lysis by a soil bacterium fermenting cellulose.一种发酵纤维素的土壤细菌对真菌的裂解作用。
Environ Microbiol. 2015 Aug;17(8):2618-27. doi: 10.1111/1462-2920.12495. Epub 2014 May 25.
4
Increase in ethanol yield via elimination of lactate production in an ethanol-tolerant mutant of Clostridium thermocellum.通过消除嗜热栖热梭菌乙醇耐受突变体中乳酸的产生来提高乙醇产量。
PLoS One. 2014 Feb 7;9(2):e86389. doi: 10.1371/journal.pone.0086389. eCollection 2014.
5
Population level analysis of evolved mutations underlying improvements in plant hemicellulose and cellulose fermentation by Clostridium phytofermentans.植物发酵单胞菌对植物半纤维素和纤维素发酵改良所涉及的进化突变的群体水平分析。
PLoS One. 2014 Jan 22;9(1):e86731. doi: 10.1371/journal.pone.0086731. eCollection 2014.
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Metabolic adaption of ethanol-tolerant Clostridium thermocellum.耐乙醇梭菌的代谢适应。
PLoS One. 2013 Jul 30;8(7):e70631. doi: 10.1371/journal.pone.0070631. Print 2013.
7
Consortia-mediated bioprocessing of cellulose to ethanol with a symbiotic Clostridium phytofermentans/yeast co-culture.协同菌群介导的共生纤维素发酵生产乙醇工艺:植物发酵梭菌/酵母共培养。
Biotechnol Biofuels. 2013 Apr 29;6(1):59. doi: 10.1186/1754-6834-6-59.
8
The Rnf complex of Clostridium ljungdahlii is a proton-translocating ferredoxin:NAD+ oxidoreductase essential for autotrophic growth.梭菌 Rnf 复合物是一种质子移位的铁氧还蛋白:NAD+氧化还原酶,对于自养生长是必需的。
mBio. 2012 Dec 26;4(1):e00406-12. doi: 10.1128/mBio.00406-12.
9
Redirecting carbon flux through exogenous pyruvate kinase to achieve high ethanol yields in Clostridium thermocellum.通过外源丙酮酸激酶改变碳通量以实现产热梭菌的高乙醇产量。
Metab Eng. 2013 Jan;15:151-8. doi: 10.1016/j.ymben.2012.11.006. Epub 2012 Nov 29.
10
Clostridium thermocellum ATCC27405 transcriptomic, metabolomic and proteomic profiles after ethanol stress.热纤梭菌 ATCC27405 在乙醇胁迫后的转录组学、代谢组学和蛋白质组学图谱。
BMC Genomics. 2012 Jul 23;13:336. doi: 10.1186/1471-2164-13-336.

嗜木发酵梭菌乙醇耐受菌株的生理学、基因组学及代谢途径工程

Physiology, Genomics, and Pathway Engineering of an Ethanol-Tolerant Strain of Clostridium phytofermentans.

作者信息

Tolonen Andrew C, Zuroff Trevor R, Ramya Mohandass, Boutard Magali, Cerisy Tristan, Curtis Wayne R

机构信息

Genoscope-CEA, CNRS-UMR8030, Université d'Évry, Évry, France

Department of Chemical Engineering, The Pennsylvania State University, University Park, Pennsylvania, USA.

出版信息

Appl Environ Microbiol. 2015 Aug 15;81(16):5440-8. doi: 10.1128/AEM.00619-15. Epub 2015 Jun 5.

DOI:10.1128/AEM.00619-15
PMID:26048945
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4510172/
Abstract

Novel processing strategies for hydrolysis and fermentation of lignocellulosic biomass in a single reactor offer large potential cost savings for production of biocommodities and biofuels. One critical challenge is retaining high enzyme production in the presence of elevated product titers. Toward this goal, the cellulolytic, ethanol-producing bacterium Clostridium phytofermentans was adapted to increased ethanol concentrations. The resulting ethanol-tolerant (ET) strain has nearly doubled ethanol tolerance relative to the wild-type level but also reduced ethanol yield and growth at low ethanol concentrations. The genome of the ET strain has coding changes in proteins involved in membrane biosynthesis, the Rnf complex, cation homeostasis, gene regulation, and ethanol production. In particular, purification of the mutant bifunctional acetaldehyde coenzyme A (CoA)/alcohol dehydrogenase showed that a G609D variant abolished its activities, including ethanol formation. Heterologous expression of Zymomonas mobilis pyruvate decarboxylase and alcohol dehydrogenase in the ET strain increased cellulose consumption and restored ethanol production, demonstrating how metabolic engineering can be used to overcome disadvantageous mutations incurred during adaptation to ethanol. We discuss how genetic changes in the ET strain reveal novel potential strategies for improving microbial solvent tolerance.

摘要

在单一反应器中对木质纤维素生物质进行水解和发酵的新型处理策略,可为生物商品和生物燃料的生产大幅节省潜在成本。一个关键挑战是在产物滴度升高的情况下保持高酶产量。为实现这一目标,对产纤维素酶、产乙醇的植物发酵梭菌进行了适应性改造,使其能耐受更高的乙醇浓度。所得的乙醇耐受(ET)菌株的乙醇耐受性相对于野生型水平几乎提高了一倍,但在低乙醇浓度下乙醇产量和生长也有所降低。ET菌株的基因组在参与膜生物合成、Rnf复合体、阳离子稳态、基因调控和乙醇生产的蛋白质中存在编码变化。特别是,对突变型双功能乙醛辅酶A(CoA)/醇脱氢酶的纯化表明,G609D变体消除了其活性,包括乙醇生成。在ET菌株中异源表达运动发酵单胞菌丙酮酸脱羧酶和醇脱氢酶增加了纤维素消耗并恢复了乙醇生产,证明了代谢工程可用于克服在适应乙醇过程中产生的不利突变。我们讨论了ET菌株中的基因变化如何揭示提高微生物溶剂耐受性的新潜在策略。