Kunpeng Li , Yangzi Guo , Xinjie Sun , Xiangheng Xi , Li Wang , Xidong Ren , Chenying Wang , Xinli Liu
{"title":"利用食品级重组枯草芽孢杆菌的全细胞生物催化技术生产ε-聚赖氨酸","authors":"Kunpeng Li , Yangzi Guo , Xinjie Sun , Xiangheng Xi , Li Wang , Xidong Ren , Chenying Wang , Xinli Liu","doi":"10.1016/j.enzmictec.2024.110467","DOIUrl":null,"url":null,"abstract":"<div><p>ε-Poly-<span>l</span>-lysine (ε-PL), a natural food preservative with various advantages, is primarily produced by <em>Streptomyces</em>. It has attracted considerable attentions for the outstanding antibacterial activity, safety, heat stability, water solubility and other remarkable properties. In this study, a food-grade recombinant <em>Bacillus subtilis</em> was constructed for the biocatalysis of ε-PL. Firstly, the <span>d</span>-alanine racemase gene (<em>alrA</em>) was deleted from the genome of <em>Bacillus subtilis</em> 168 to construct an auxotrophic <em>B. subtilis</em> 168 (<em>alrA</em><sup>-</sup>). Based on the shuttle plasmid pMA5, a food-grade plasmid pMA5a was constructed by replacing the genes of kanamycin resistance (<em>Kan</em><sup><em>r</em></sup>) and ampicillin resistance (<em>Amp</em><sup><em>r</em></sup>) with <em>alrA</em> and the gene encoding α-peptide of β-galactosidase (<em>lacZα</em>), respectively. Subsequently, codon-optimized ε-PL synthase gene (<em>pls</em>) and P-<em>pls</em> were ligated into pMA5a and transformed in <em>E. coli</em> DH5α and expressed in <em>B. subtilis</em> 168 (<em>alrA</em><sup><em>-</em></sup>)<em>.</em> Finally, the whole-cell biocatalysis conditions for ε-PL production by <em>B</em>. <em>subtilis</em> 168 (<em>alrA</em><sup>-</sup>)/pMA5a-<em>pls</em> were optimized, and the optimal conditions were 30°C, pH 4, <span>l</span>-lysine concentration of 0.6 g/L, bacterial concentration of 15 % (w/v) and a catalytic time of 7 h. The ε-PL production reached a maximum of 0.33 ± 0.03 g/L. The product was verified to be ε-PL by HPLC and tricine-SDS-PAGE. The information obtained in this study shows critical reference for the food-grade heterologous expression of ε-PL.</p></div>","PeriodicalId":11770,"journal":{"name":"Enzyme and Microbial Technology","volume":null,"pages":null},"PeriodicalIF":3.4000,"publicationDate":"2024-06-07","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Whole-cell biocatalysis for ε-poly-l-lysine production by a food-grade recombinant Bacillus subtilis\",\"authors\":\"Kunpeng Li , Yangzi Guo , Xinjie Sun , Xiangheng Xi , Li Wang , Xidong Ren , Chenying Wang , Xinli Liu\",\"doi\":\"10.1016/j.enzmictec.2024.110467\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<div><p>ε-Poly-<span>l</span>-lysine (ε-PL), a natural food preservative with various advantages, is primarily produced by <em>Streptomyces</em>. It has attracted considerable attentions for the outstanding antibacterial activity, safety, heat stability, water solubility and other remarkable properties. In this study, a food-grade recombinant <em>Bacillus subtilis</em> was constructed for the biocatalysis of ε-PL. Firstly, the <span>d</span>-alanine racemase gene (<em>alrA</em>) was deleted from the genome of <em>Bacillus subtilis</em> 168 to construct an auxotrophic <em>B. subtilis</em> 168 (<em>alrA</em><sup>-</sup>). Based on the shuttle plasmid pMA5, a food-grade plasmid pMA5a was constructed by replacing the genes of kanamycin resistance (<em>Kan</em><sup><em>r</em></sup>) and ampicillin resistance (<em>Amp</em><sup><em>r</em></sup>) with <em>alrA</em> and the gene encoding α-peptide of β-galactosidase (<em>lacZα</em>), respectively. Subsequently, codon-optimized ε-PL synthase gene (<em>pls</em>) and P-<em>pls</em> were ligated into pMA5a and transformed in <em>E. coli</em> DH5α and expressed in <em>B. subtilis</em> 168 (<em>alrA</em><sup><em>-</em></sup>)<em>.</em> Finally, the whole-cell biocatalysis conditions for ε-PL production by <em>B</em>. <em>subtilis</em> 168 (<em>alrA</em><sup>-</sup>)/pMA5a-<em>pls</em> were optimized, and the optimal conditions were 30°C, pH 4, <span>l</span>-lysine concentration of 0.6 g/L, bacterial concentration of 15 % (w/v) and a catalytic time of 7 h. The ε-PL production reached a maximum of 0.33 ± 0.03 g/L. The product was verified to be ε-PL by HPLC and tricine-SDS-PAGE. 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Whole-cell biocatalysis for ε-poly-l-lysine production by a food-grade recombinant Bacillus subtilis
ε-Poly-l-lysine (ε-PL), a natural food preservative with various advantages, is primarily produced by Streptomyces. It has attracted considerable attentions for the outstanding antibacterial activity, safety, heat stability, water solubility and other remarkable properties. In this study, a food-grade recombinant Bacillus subtilis was constructed for the biocatalysis of ε-PL. Firstly, the d-alanine racemase gene (alrA) was deleted from the genome of Bacillus subtilis 168 to construct an auxotrophic B. subtilis 168 (alrA-). Based on the shuttle plasmid pMA5, a food-grade plasmid pMA5a was constructed by replacing the genes of kanamycin resistance (Kanr) and ampicillin resistance (Ampr) with alrA and the gene encoding α-peptide of β-galactosidase (lacZα), respectively. Subsequently, codon-optimized ε-PL synthase gene (pls) and P-pls were ligated into pMA5a and transformed in E. coli DH5α and expressed in B. subtilis 168 (alrA-). Finally, the whole-cell biocatalysis conditions for ε-PL production by B. subtilis 168 (alrA-)/pMA5a-pls were optimized, and the optimal conditions were 30°C, pH 4, l-lysine concentration of 0.6 g/L, bacterial concentration of 15 % (w/v) and a catalytic time of 7 h. The ε-PL production reached a maximum of 0.33 ± 0.03 g/L. The product was verified to be ε-PL by HPLC and tricine-SDS-PAGE. The information obtained in this study shows critical reference for the food-grade heterologous expression of ε-PL.
期刊介绍:
Enzyme and Microbial Technology is an international, peer-reviewed journal publishing original research and reviews, of biotechnological significance and novelty, on basic and applied aspects of the science and technology of processes involving the use of enzymes, micro-organisms, animal cells and plant cells.
We especially encourage submissions on:
Biocatalysis and the use of Directed Evolution in Synthetic Biology and Biotechnology
Biotechnological Production of New Bioactive Molecules, Biomaterials, Biopharmaceuticals, and Biofuels
New Imaging Techniques and Biosensors, especially as applicable to Healthcare and Systems Biology
New Biotechnological Approaches in Genomics, Proteomics and Metabolomics
Metabolic Engineering, Biomolecular Engineering and Nanobiotechnology
Manuscripts which report isolation, purification, immobilization or utilization of organisms or enzymes which are already well-described in the literature are not suitable for publication in EMT, unless their primary purpose is to report significant new findings or approaches which are of broad biotechnological importance. Similarly, manuscripts which report optimization studies on well-established processes are inappropriate. EMT does not accept papers dealing with mathematical modeling unless they report significant, new experimental data.