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采用复合冷冻保护剂维持细胞膜完整性并调控相关基因提高粉状发酵乳杆菌 Lf01 的存活率。

Improving the viability of powdered Lactobacillus fermentum Lf01 with complex lyoprotectants by maintaining cell membrane integrity and regulating related genes.

机构信息

College of Food and Pharmaceutical Sciences, Ningbo University, Ningbo, People's Republic of China.

出版信息

J Food Biochem. 2022 Aug;46(8):e14181. doi: 10.1111/jfbc.14181. Epub 2022 Apr 8.

Abstract

In this study, Lactobacillus fermentum Lf01, which was screened out in the early stage of the experiment, had better fermentation performance as the research objectives, and was prepared into powder by vacuum freeze-drying technology. We used response surface methodology to optimize the composition of the mixture used to protect powdered L. fermentum. Our data demonstrated that 10% skim milk, 12% sucrose, 0.767% tyrosine, and 2.033% sorbitol ensured the highest survival rate (92.7%) of L. fermentum. We have initially explored the potential mechanism of the complex protectants through the protection effect under the electron microscope, and the analysis methods of Fourier transform infrared spectroscopy and transcriptomics. The complex protectants could effectively maintain the permeability barrier and structural integrity of cell membrane and avoid the leakage of cell contents. Transcriptomic data have also indicated that the protective effect of the complex protectants on bacteria during freeze-drying was most likely achieved through the regulation of related genes. We identified 240 differential genes in the treatment group, including 231 up-regulated genes and 9 down-regulated genes. Gene ontology (GO) and Kyoto encyclopaedia of genes and genomes (KEGG) analyses of differential expression genes (DEGs) indicated that genes involved in amino acid metabolism, carbohydrate metabolism, membrane transport, fatty acid biosynthesis and cell growth were significantly up-regulated. These new results provided novel insights into the potential mechanism of lyoprotectants at the cellular level, morphological level, and gene level of the bacteria. PRACTICAL APPLICATIONS: In our study, a strain of Lactobacillus fermentum Lf01 with good fermentation performance was selected to be prepared into powder by freeze-drying technique. Bacterial cells were unavoidably damaged during the freeze-drying process. As a result, we investigated the protective effects on L. fermentum of ten distinct freeze-dried protectants and their mixtures. We were also attempting to explain the mechanism of action of the complex protectants at the cellular level, morphological level, and gene level of the bacteria. This presents very important theoretical and practical significance for the preservation of strains and the production of commercial direct-investment starter.

摘要

在本研究中,我们以筛选得到的发酵性能较好的乳杆菌 Lf01 为研究对象,采用真空冷冻干燥技术制备成菌粉。利用响应面法对保护 L. fermentum 菌粉的混合保护剂配方进行优化,结果表明:10%脱脂乳、12%蔗糖、0.767%酪氨酸、2.033%山梨醇可使 L. fermentum 的存活率达到 92.7%。我们初步通过电镜下的保护效果、傅里叶变换红外光谱和转录组学分析方法,探讨了复合保护剂的潜在作用机制。复合保护剂可有效维持细胞膜的渗透屏障和结构完整性,避免细胞内容物泄漏。转录组学数据分析也表明,复合保护剂在冷冻干燥过程中对细菌的保护作用可能是通过调节相关基因实现的。在处理组中,我们共鉴定到 240 个差异基因,其中上调基因 231 个,下调基因 9 个。差异表达基因(DEGs)的基因本体(GO)和京都基因与基因组百科全书(KEGG)分析表明,参与氨基酸代谢、碳水化合物代谢、膜转运、脂肪酸生物合成和细胞生长的基因显著上调。这些新的结果为细菌的细胞水平、形态水平和基因水平的冷冻保护剂的潜在作用机制提供了新的见解。实际应用:在本研究中,我们选择发酵性能良好的乳杆菌 Lf01 菌株,采用冷冻干燥技术制备成菌粉。在冷冻干燥过程中,细菌细胞不可避免地会受到损伤。因此,我们研究了十种不同的冷冻干燥保护剂及其混合物对 L. fermentum 的保护作用。我们还试图解释复合保护剂在细菌的细胞水平、形态水平和基因水平上的作用机制。这对于菌株的保存和商业直接投资启动器的生产具有非常重要的理论和实际意义。

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