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Characterization of the tre Locus and Analysis of Trehalose Cryoprotection in Lactobacillus acidophilus NCFM

机译:嗜酸乳杆菌NCFM中tre基因座的表征和海藻糖的低温保护作用分析

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摘要

Freezing and lyophilization are common methods used for preservation and storage of microorganisms during the production of concentrated starter cultures destined for industrial fermentations or product formulations. The compatible solute trehalose has been widely reported to protect bacterial, yeast and animal cells against a variety of environmental stresses, particularly freezing and dehydration. Analysis of the Lactobacillus acidophilus NCFM genome revealed a putative trehalose utilization locus consisting of a transcriptional regulator, treR; a trehalose phosphoenolpyruvate transferase system (PTS) transporter, treB; and a trehalose-6-phosphate hydrolase, treC. The objective of this study was to characterize the tre locus in L. acidophilus and determine whether or not intracellular uptake of trehalose contributes to cryoprotection. Cells subjected to repeated freezing and thawing cycles were monitored for survival in the presence of various concentrations of trehalose. At 20% trehalose a 2-log increase in survival was observed. The trehalose PTS transporter and trehalose hydrolase were disrupted by targeted plasmid insertions. The resulting mutants were unable to grow on trehalose, indicating that both trehalose transport into the cell via a PTS and hydrolysis via a trehalose-6-phosphate hydrolase were necessary for trehalose fermentation. Trehalose uptake was found to be significantly reduced in the transporter mutant but unaffected in the hydrolase mutant. Additionally, the cryoprotective effect of trehalose was reduced in these mutants, suggesting that intracellular transport and hydrolysis contribute significantly to cryoprotection.
机译:冷冻和冻干是在用于工业发酵或产品配方的浓缩发酵剂生产过程中用于微生物保存和储存的常用方法。相容性海藻糖溶质海藻糖已被广泛报道以保护细菌,酵母和动物细胞免受各种环境压力,特别是冷冻和脱水。对嗜酸乳杆菌NCFM基因组的分析表明,假定的海藻糖利用位点由转录调节子treR组成。海藻糖磷酸烯醇丙酮酸转移酶系统(PTS)转运蛋白treB;和6-磷酸海藻糖水解酶treC。这项研究的目的是鉴定嗜酸乳杆菌的基因座,并确定细胞内摄取海藻糖是否有助于冷冻保护。监测经受反复冷冻和解冻循环的细胞在各种浓度海藻糖存在下的存活。海藻糖浓度为20%时,存活率提高了2个对数。海藻糖PTS转运蛋白和海藻糖水解酶被靶向质粒插入破坏。产生的突变体无法在海藻糖上生长,这表明海藻糖发酵既需要通过PTS将海藻糖转运到细胞中,又需要通过海藻糖6-磷酸水解酶进行水解。发现转运蛋白突变体中海藻糖的摄取显着降低,但在水解酶突变体中不受影响。另外,在这些突变体中海藻糖的冷冻保护作用降低,表明细胞内转运和水解显着促进了冷冻保护。

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