Liu Simin, Qi Haishan
Key Laboratory of System Bioengineering of Ministry of Education, School of Chemical Engineering and Technology, Tianjin University, Tianjin 300072, China.
Sheng Wu Gong Cheng Xue Bao. 2022 Dec 25;38(12):4403-4419. doi: 10.13345/j.cjb.220400.
1, 5-diaminopentane, also known as cadaverine, is an important raw material for the production of biopolyamide. It can be polymerized with dicarboxylic acid to produce biopolyamide PA5X whose performances are comparable to that of the petroleum-based polyamide materials. Notably, biopolyamide uses renewable resources such as starch, cellulose and vegetable oil as substrate. The production process does not cause pollution to the environment, which is in line with the green and sustainable development strategy. The biosynthesis of 1, 5-diaminopentane mainly includes two methods: the microbial synthesis and the whole cell catalysis. Lysine decarboxylase as the key enzyme for 1, 5-diaminopentane production, mainly includes an inducible lysine decarboxylase CadA and a constituent lysine decarboxylase LdcC. Lysine decarboxylase is a folded type Ⅰ pyridoxal-5' phosphate (PLP) dependent enzyme, which displays low activity and unstable structure, and is susceptible to deactivation by environmental factors in practical applications. Therefore, improving the catalytic activity and stability of lysine decarboxylase has become a research focus in this field, and molecular engineering and immobilization are the mainly approaches. Here, the mechanism, molecular engineering and immobilization strategies of lysine decarboxylase were reviewed, and the further strategies for improving its activity and stability were also prospected, with the aim to achieve efficient production of 1, 5-diaminopentane.
1,5 - 二氨基戊烷,也被称为尸胺,是生产生物聚酰胺的重要原料。它可与二元羧酸聚合生成性能与石油基聚酰胺材料相当的生物聚酰胺PA5X。值得注意的是,生物聚酰胺以淀粉、纤维素和植物油等可再生资源为底物。其生产过程不会对环境造成污染,符合绿色可持续发展战略。1,5 - 二氨基戊烷的生物合成主要包括两种方法:微生物合成和全细胞催化。赖氨酸脱羧酶作为生产1,5 - 二氨基戊烷的关键酶,主要包括诱导型赖氨酸脱羧酶CadA和组成型赖氨酸脱羧酶LdcC。赖氨酸脱羧酶是一种折叠型Ⅰ类依赖磷酸吡哆醛(PLP)的酶,其活性较低且结构不稳定,在实际应用中易受环境因素失活。因此,提高赖氨酸脱羧酶的催化活性和稳定性已成为该领域的研究热点,分子工程和固定化是主要方法。在此,综述了赖氨酸脱羧酶的作用机制、分子工程和固定化策略,并展望了进一步提高其活性和稳定性的策略,旨在实现1,5 - 二氨基戊烷的高效生产。