食品科学 ›› 2023, Vol. 44 ›› Issue (23): 231-251.doi: 10.7506/spkx1002-6630-20221114-158

• 专题论述 • 上一篇    下一篇

ε-聚赖氨酸生产菌育种研究进展

孙子龙, 扶教龙, 王月, 周运峰, 李博彦, 钱玮, 白净, 鞠鑫, 李良智   

  1. (苏州科技大学化学与生命科学学院,江苏 苏州 215009)
  • 出版日期:2023-12-15 发布日期:2024-01-02
  • 基金资助:
    国家自然科学基金面上项目(21676173);苏州市科技计划项目(SNG2017053); 苏州科技学院科研基金资助项目(XKZ201411)

Advances in Strain Improvement for the Production of ε-Poly-L-lysine

SUN Zilong, FU Jiaolong, WANG Yue, ZHOU Yunfeng, LI Boyan, QIAN Wei, BAI Jing, JU Xin, LI Liangzhi   

  1. (School of Chemical and Life Sciences, Suzhou University of Science and Technology, Suzhou 215009, China)
  • Online:2023-12-15 Published:2024-01-02

摘要: ε-聚赖氨酸(ε-poly-L-lysine,ε-PL)是一种含25~35 个L-赖氨酸残基的新型生物聚合物,由ε-NH2和α-COOH脱水缩合形成。其具有热稳定性、可食性、水溶性、可降解性、抑菌谱广及无毒等优异性能,作为一种安全的食品防腐剂,在日本、韩国、美国、中国和一些其他国家得以应用。ε-PL通常由白色链霉菌(Streptomyces albulus)发酵生产,对生产菌进行育种改造是提高ε-PL生产和降低成本的关键方法之一。目前,研究者们已通过理化诱变、核糖体工程、基因组重排、基因工程等方法对ε-PL生产菌进行了大量育种研究,且得到了一些高产菌株。本文首先简要介绍ε-PL生物合成机理,并从上述几个方面着重介绍ε-PL生产菌育种研究进展,然后概述ε-PL发酵生产工艺,最后对相关研究进行展望,以期为ε-PL微生物育种和绿色生物制造提供借鉴与参考。

关键词: ε-聚赖氨酸;育种;核糖体工程;基因工程;白色链霉菌

Abstract: ε-Poly-L-lysine (ε-PL) is a novel biopolymer consisting of 25–35 L-lysine residues, which is formed by the dehydration condensation of ε-NH2 and α-COOH. ε-PL possesses many excellent characteristics, such as antimicrobial activity, edibility, water solubility, biodegradability, thermostability and nontoxicity. As a natural and safe food preservative, ε-PL possesses many excellent advantages such as thermal stability, edibility, water solubility, degradability, and broad-spectrum antibacterial activity and has been successfully utilized in Japan, South Korea, the United States, China and other countries. ε-PL is usually produced by fermentation with Streptomyces albulus, and improving ε-PL-producing stains is crucial for enhancing ε-PL production and reducing costs. At present, researchers have obtained microbial strains capable of producing high levels of ε-PL by using physicochemical mutagenesis, ribosome engineering, genome shuffling, genetic engineering and other methods. This review introduces the mechanism of ε-PL biosynthesis and recent progress in strain improvement for the production of ε-PL, and gives an overview of the fermentation process of ε-PL. Finally, this review concludes with an outlook on future research directions. We hope that this review can help promote strain improvement for green biological manufacturing of ε-poly-L-lysine.

Key words: ε-poly-L-lysine; breeding; ribosome engineering; genetic engineering; Streptomyces albulus

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