首页> 外文期刊>Journal of applied microbiology >Mn2+ and Mg2+ synergistically enhanced lactic acid production by Lactobacillus rhamnosus FTDC 8313 via affecting different stages of the hexose monophosphate pathway.
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Mn2+ and Mg2+ synergistically enhanced lactic acid production by Lactobacillus rhamnosus FTDC 8313 via affecting different stages of the hexose monophosphate pathway.

机译:Mn 2 + 和Mg 2 + 通过影响鼠李糖单磷酸途径的不同阶段,协同增强了鼠李糖乳杆菌FTDC 8313的乳酸生产。

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Aims: The study aimed to evaluate the effects of Mn2+ and Mg2+ on lactic acid production using response surface methodology and to further study their effects on interactions between the enzymes and substrates along the hexose monophosphate pathway using a molecular modelling approach. Methods and Results: A rotatable central composite design matrix for lactic acid production was generated with two independent factors namely, manganese sulfate and magnesium sulfate. The second-order regression model indicated that the quadratic model was significant (P<0.05), suggesting that the model accurately represented the data in the experimental region. Three-dimensional response surface showed that lactic acid production was high along the region where the ratio of MnSO4 to MgSO4 was almost 1:1, justifying the need for both Mg2+ and Mn2+ to be present simultaneously in stimulating the production of lactic acid. Molecular docking simulation was performed on a total of 13 essential enzymes involved in the hexose monophosphate pathway for the production of lactic acid with four different conditions namely in the presence of Mg2+, Mn2+, both Mg2+ and Mn2+ and in the absence of metal ions. Results showed that the presence of both Mg2+ and Mn2+ within the binding site improved the binding affinity for substrates in five enzymes namely, glucose-6-phosphate dehydrogenase, phosphogluconate dehydrogenase, glyceraldehyde-3-phosphate dehydrogenase, phosphopyruvate hydratase and pyruvate kinase. Conclusions: Using response surface methodology and molecular modelling approach, we illustrated that Mg2+ and Mn2+ synergistically enhanced lactic acid production by Lactobacillus rhamnosus FTDC 8313 via affecting different stages of the hexose monophosphate pathway. Significance and Impacts of the Study: Mg2+ and Mn2+ synergistically improved lactic acid production of Lact. rhamnosus via improved binding affinity of the enzyme-substrate along the hexose monophosphate pathway, instead of purely affecting growth as previously understood.
机译:目的:本研究旨在利用响应面法评估Mn 2 + 和Mg 2 + 对乳酸生产的影响,并进一步研究其对酶之间相互作用的影响使用分子建模方法沿着己糖单磷酸途径生成底物和底物。方法和结果:利用两个独立的因素,硫酸锰和硫酸镁,生成了可旋转的乳酸合成中心设计矩阵。二阶回归模型表明二次模型是显着的(P <0.05),表明该模型可以准确地表示实验区域中的数据。三维响应面显示,沿着MnSO 4 与MgSO 4 的比例几乎为1:1的区域,乳酸的产量很高,这证明了两者都需要Mg在刺激乳酸生产中同时存在 2 + 和Mn 2 + 。在六种不同条件下,即在Mg 2 + ,Mn 2+存在下,对己糖一磷酸途径中涉及的总共13种必需酶进行了分子对接模拟,Mg 2 + 和Mn 2 + 且没有金属离子。结果表明,在结合位点中同时存在Mg 2 + 和Mn 2 + 可以提高五种酶(葡萄糖6磷酸脱氢酶)对底物的结合亲和力,磷酸葡糖酸脱氢酶,3-磷酸甘油醛脱氢酶,磷酸丙酮酸水合酶和丙酮酸激酶。结论:使用响应面方法和分子建模方法,我们证明了Mg 2 + 和Mn 2 + 通过鼠李糖乳杆菌FTDC 8313的不同阶段协同增效生产乳酸。己糖单磷酸途径。研究的意义和影响:Mg 2 + 和Mn 2 + 协同提高乳酸的乳酸生产。通过改善酶-底物沿己糖单磷酸途径的结合亲和力,鼠李糖单胞菌,而不是如先前所理解的那样纯粹影响生长。

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