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Requirement of the Lactobacillus casei MaeKR Two-Component System for l-Malic Acid Utilization via a Malic Enzyme Pathway

机译:干酪乳杆菌MaeKR两组分系统通过苹果酸酶途径用于l-苹果酸的需求

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Lactobacillus casei can metabolize l-malic acid via malolactic enzyme (malolactic fermentation [MLF]) or malic enzyme (ME). Whereas utilization of l-malic acid via MLF does not support growth, the ME pathway enables L. casei to grow on l-malic acid. In this work, we have identified in the genomes of L. casei strains BL23 and ATCC 334 a cluster consisting of two diverging operons, maePE and maeKR , encoding a putative malate transporter ( maeP ), an ME ( maeE ), and a two-component (TC) system belonging to the citrate family ( maeK and maeR ). Homologous clusters were identified in Enterococcus faecalis , Streptococcus agalactiae , Streptococcus pyogenes , and Streptococcus uberis . Our results show that ME is essential for l-malic acid utilization in L. casei . Furthermore, deletion of either the gene encoding the histidine kinase or the response regulator of the TC system resulted in the loss of the ability to grow on l-malic acid, thus indicating that the cognate TC system regulates and is essential for the expression of ME. Transcriptional analyses showed that expression of maeE is induced in the presence of l-malic acid and repressed by glucose, whereas TC system expression was induced by l-malic acid and was not repressed by glucose. DNase I footprinting analysis showed that MaeR binds specifically to a set of direct repeats [5′-TTATT(A/T)AA-3′] in the mae promoter region. The location of the repeats strongly suggests that MaeR activates the expression of the diverging operons maePE and maeKR where the first one is also subjected to carbon catabolite repression.
机译:干酪乳杆菌可通过苹果酸酶(苹果酸发酵[MLF])或苹果酸酶(ME)代谢l-苹果酸。尽管经由MLF对l-苹果酸的利用不支持生长,但ME途径使干酪乳杆菌能够在l-苹果酸上生长。在这项工作中,我们在干酪乳杆菌BL23和ATCC 334的基因组中确定了一个簇,该簇由两个发散的操纵子maePE和maeKR组成,编码假定的苹果酸转运蛋白(maeP),ME(maeE)和两个属于柠檬酸盐家族的分子(TC)系统(maeK和maeR)。在粪肠球菌,无乳链球菌,化脓性链球菌和乳房链球菌中鉴定出同源簇。我们的结果表明,ME对于干酪乳杆菌中的L-苹果酸利用至关重要。此外,编码组氨酸激酶的基因或TC系统的应答调节子的缺失导致丧失了在1-苹果酸上生长的能力,因此表明相关的TC系统调节并且对于ME的表达是必不可少的。 。转录分析表明,maeE的表达在1-苹果酸的存在下被诱导并且被葡萄糖抑制,而TC系统的表达在1-苹果酸的诱导下被葡萄糖抑制。 DNase I足迹分析表明,MaeR与mae启动子区域的一组直接重复[5'-TTATT(A / T)AA-3']特异性结合。重复的位置强烈表明,MaeR激活了不同操纵子maePE和maeKR的表达,其中第一个操纵子也受到碳分解代谢物的抑制。

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