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In silico Prediction in vitro Antibacterial Spectrum and Physicochemical Properties of a Putative Bacteriocin Produced by Lactobacillus rhamnosus Strain L156.4

机译:鼠李糖乳杆菌L156.4产生的假定细菌素的计算机模拟预测体外抗菌谱和理化性质

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摘要

A bacteriocinogenic Lactobacillus rhamnosus L156.4 strain isolated from the feces of NIH mice was identified by 16S rRNA gene sequencing and MALDI-TOF mass spectrometry. The entire genome was sequenced using Illumina, annotated in the PGAAP, and RAST servers, and deposited. Conserved genes associated with bacteriocin synthesis were predicted using BAGEL3, leading to the identification of an open reading frame (ORF) that shows homology with the L. rhamnosus GG (ATCC 53103) prebacteriocin gene. The encoded protein contains a conserved protein motif associated a structural gene of the Enterocin A superfamily. We found ORFs related to the prebacteriocin, immunity protein, ABC transporter proteins, and regulatory genes with 100% identity to those of L. rhamnosus HN001. In this study, we provide evidence of a putative bacteriocin produced by L. rhamnosus L156.4 that was further confirmed by in vitro assays. The antibacterial activity of the substances produced by this strain was evaluated using the deferred agar-spot and spot-on-the lawn assays, and a wide antimicrobial activity spectrum against human and foodborne pathogens was observed. The physicochemical characterization of the putative bacteriocin indicated that it was sensitive to proteolytic enzymes, heat stable and maintained its antibacterial activity in a pH ranging from 3 to 9. The activity against Lactobacillus fermentum, which was used as an indicator strain, was detected during bacterial logarithmic growth phase, and a positive correlation was confirmed between bacterial growth and production of the putative bacteriocin. After a partial purification from cell-free supernatant by salt precipitation, the putative bacteriocin migrated as a diffuse band of approximately 1.0–3.0 kDa by SDS-PAGE. Additional studies are being conducted to explore its use in the food industry for controlling bacterial growth and for probiotic applications.
机译:通过16S rRNA基因测序和MALDI-TOF质谱法鉴定了从NIH小鼠粪便中分离出的一种细菌致病性鼠李糖乳杆菌L156.4菌株。使用Illumina对整个基因组进行测序,在PGAAP和RAST服务器中进行注释,然后进行保藏。使用BAGEL3可以预测与细菌素合成相关的保守基因,从而鉴定出一个开放阅读框(ORF),该框与鼠李糖乳杆菌GG(ATCC 53103)前细菌素基因具有同源性。编码的蛋白质包含与肠菌素A超家族的结构基因相关的保守的蛋白质基序。我们发现与前细菌素,免疫蛋白,ABC转运蛋白和调节基因相关的ORF与鼠李糖乳杆菌HN001具有100%的同一性。在这项研究中,我们提供了鼠李糖乳杆菌L156.4产生的推定细菌素的证据,该证据已通过体外试验进一步证实。使用延迟的琼脂斑点法和草坪上斑点法评估了由该菌株产生的物质的抗菌活性,并观察到了对人类和食源性病原体的广泛抗菌活性谱。假定的细菌素的理化特性表明,它对蛋白水解酶敏感,热稳定并在3至9的pH范围内保持其抗菌活性。在细菌培养过程中检测到了对发酵乳杆菌的活性,该菌株被用作指示菌。对数生长期,细菌生长与推定细菌素的产生之间存在正相关关系。通过盐沉淀从无细胞上清液中部分纯化后,假定的细菌素通过SDS-PAGE迁移为约1.0–3.0 kDa的扩散带。正在进行其他研究,以探索其在食品工业中用于控制细菌生长和益生菌应用的用途。

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