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Electrogenic malate uptake and improved growth energetics of the malolactic bacterium Leuconostoc oenos grown on glucose-malate mixtures.产电苹果酸摄取及在葡萄糖 - 苹果酸混合物上生长的苹果酸乳酸发酵菌嗜杀片球菌生长能量学的改善
J Bacteriol. 1992 Aug;174(16):5302-8. doi: 10.1128/jb.174.16.5302-5308.1992.
2
Uniport of monoanionic L-malate in membrane vesicles from Leuconostoc oenos.来自嗜杀片球菌的膜囊泡中单阴离子L-苹果酸的单向运输
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3
The proton motive force generated in Leuconostoc oenos by L-malate fermentation.乳酸乳球菌通过L-苹果酸发酵产生的质子动力。
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4
Malolactic fermentation: electrogenic malate uptake and malate/lactate antiport generate metabolic energy.苹果酸-乳酸发酵:电生性苹果酸摄取及苹果酸/乳酸反向转运产生代谢能量。
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Electrogenic L-malate transport by Lactobacillus plantarum: a basis for energy derivation from malolactic fermentation.植物乳杆菌的电致L-苹果酸转运:从苹果酸-乳酸发酵获取能量的基础。
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In vitro reassembly of the malolactic fermentation pathway of Leuconostoc oenos (Oenococcus oeni).嗜酒明串珠菌(酒类酒球菌)苹果酸-乳酸发酵途径的体外重组
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8
Biochemical basis for glucose-induced inhibition of malolactic fermentation in Leuconostoc oenos.葡萄糖对酒酒球菌中苹果酸-乳酸发酵抑制作用的生化基础
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Antonie Van Leeuwenhoek. 1997 Feb;71(1-2):117-28. doi: 10.1023/a:1000143525601.

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Genome-scale modeling and transcriptome analysis of Leuconostoc mesenteroides unravel the redox governed metabolic states in obligate heterofermentative lactic acid bacteria.利用基因组规模建模和转录组分析揭示了严格异型发酵乳酸菌中受氧化还原控制的代谢状态
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In vitro reassembly of the malolactic fermentation pathway of Leuconostoc oenos (Oenococcus oeni).嗜酒明串珠菌(酒类酒球菌)苹果酸-乳酸发酵途径的体外重组
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7
The proton motive force generated in Leuconostoc oenos by L-malate fermentation.乳酸乳球菌通过L-苹果酸发酵产生的质子动力。
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8
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Growth and energetics of Leuconostoc oenos during cometabolism of glucose with citrate or fructose.嗜柠檬酸明串珠菌在葡萄糖与柠檬酸盐或果糖共代谢过程中的生长与能量代谢
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Properties of Malolactic Activity Purified from Leuconostoc oenos ML34 by Affinity Chromatography.通过亲和层析从乳脂链球菌 ML34 中纯化的苹果酸酶活性的性质。
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Purification and Properties of a Malolactic Enzyme from a Strain of Leuconostoc mesenteroides Isolated from Grapes.从葡萄中分离出的肠膜明串珠菌的苹果酸乳酸酶的纯化和性质。
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Stimulatory Effect of Malo-Lactic Fermentation on the Growth Rate of Leuconostoc oenos.戊糖乳杆菌生长速率的促进作用受苹果酸-乳酸发酵的影响。
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Electrochemical proton gradient and lactate concentration gradient in Streptococcus cremoris cells grown in batch culture.分批培养的嗜热链球菌细胞中的电化学质子梯度和乳酸浓度梯度。
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Lactate efflux-induced electrical potential in membrane vesicles of Streptococcus cremoris.乳酸乳球菌膜囊泡中乳酸外流诱导的电势
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Chemiosmotic coupling in oxidative and photosynthetic phosphorylation.氧化磷酸化和光合磷酸化中的化学渗透偶联
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Chemiosmotic coupling in energy transduction: a logical development of biochemical knowledge.能量转导中的化学渗透偶联:生化知识的逻辑发展。
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Lactic acid translocation: terminal step in glycolysis by Streptococcus faecalis.乳酸转运:粪肠球菌糖酵解的终末步骤。
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产电苹果酸摄取及在葡萄糖 - 苹果酸混合物上生长的苹果酸乳酸发酵菌嗜杀片球菌生长能量学的改善

Electrogenic malate uptake and improved growth energetics of the malolactic bacterium Leuconostoc oenos grown on glucose-malate mixtures.

作者信息

Loubiere P, Salou P, Leroy M J, Lindley N D, Pareilleux A

机构信息

Département de Génie Biochimique, Centre National de la Recherche Scientifique Unité de Recherche Associée, Toulouse, France.

出版信息

J Bacteriol. 1992 Aug;174(16):5302-8. doi: 10.1128/jb.174.16.5302-5308.1992.

DOI:10.1128/jb.174.16.5302-5308.1992
PMID:1644757
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC206366/
Abstract

Growth of the malolactic bacterium Leuconostoc oenos was improved with respect to both the specific growth rate and the biomass yield during the fermentation of glucose-malate mixtures as compared with those in media lacking malate. Such a finding indicates that the malolactic reaction contributed to the energy budget of the bacterium, suggesting that growth is energy limited in the absence of malate. An energetic yield (YATP) of 9.5 g of biomass.mol ATP-1 was found during growth on glucose with an ATP production by substrate-level phosphorylation of 1.2 mol of ATP.mol of glucose-1. During the period of mixed-substrate catabolism, an apparent YATP of 17.7 was observed, indicating a mixotrophy-associated ATP production of 2.2 mol of ATP.mol of glucose-1, or more correctly an energy gain of 0.28 mol of ATP.mol of malate-1, representing proton translocation flux from the cytoplasm to the exterior of 0.56 or 0.84 H+.mol of malate-1(depending on the H+/ATP stoichiometry). The growth-stimulating effect of malate was attributed to chemiosmotic transport mechanisms rather than proton consumption by the malolactic enzyme. Lactate efflux was by electroneutral lactate -/H+ symport having a constant stoichiometry, while malate uptake was predominantly by a malate -/H+ symport, though a low-affinity malate- uniport was also implicated. The measured electrical component (delta psi) of the proton motive force was altered, passing from -30 to -60 mV because of this translocation of dissociated organic acids when malolactic fermentation occurred.

摘要

与不含苹果酸的培养基相比,在葡萄糖 - 苹果酸混合物发酵过程中,苹果酸乳酸细菌酒酒球菌的生长在比生长速率和生物量产量方面均得到改善。这一发现表明苹果酸乳酸反应有助于该细菌的能量平衡,这意味着在没有苹果酸的情况下生长受到能量限制。在以葡萄糖为底物生长期间,发现能量产量(YATP)为9.5 g生物量·mol ATP⁻¹,通过底物水平磷酸化产生的ATP为1.2 mol ATP·mol葡萄糖⁻¹。在混合底物分解代谢期间,观察到表观YATP为17.7,表明与兼养相关的ATP产量为2.2 mol ATP·mol葡萄糖⁻¹,或者更准确地说,能量增益为0.28 mol ATP·mol苹果酸⁻¹,代表质子从细胞质向细胞外的转运通量为0.56或0.84 H⁺·mol苹果酸⁻¹(取决于H⁺/ATP化学计量比)。苹果酸的生长刺激作用归因于化学渗透转运机制,而不是苹果酸乳酸酶消耗质子。乳酸外流是通过具有恒定化学计量比的电中性乳酸⁻/H⁺同向转运,而苹果酸摄取主要是通过苹果酸⁻/H⁺同向转运,不过也涉及低亲和力的苹果酸单向转运。当发生苹果酸乳酸发酵时,由于解离有机酸的这种转运,质子动力势的测量电成分(Δψ)从 - 30 mV变为 - 60 mV。