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d-蛋氨酸和 d-苯丙氨酸通过调控细胞壁重塑提高乳球菌 F44 的耐酸能力和乳链菌肽 Y 的产量。

d-Methionine and d-Phenylalanine Improve Lactococcus lactis F44 Acid Resistance and Nisin Yield by Governing Cell Wall Remodeling.

机构信息

Department of Pharmaceutical Engineering, School of Chemical Engineering and Technology, Tianjin University, Tianjin, China.

Key Laboratory of Systems Bioengineering, Ministry of Education, Tianjin, China.

出版信息

Appl Environ Microbiol. 2020 Apr 17;86(9). doi: 10.1128/AEM.02981-19.

Abstract

encounters various environmental challenges, especially acid stress, during its growth. The cell wall can maintain the integrity and shape of the cell under environmental stress, and d-amino acids play an important role in cell wall synthesis. Here, by analyzing the effects of 19 different d-amino acids on the physiology of F44, we found that exogenously supplied d-methionine and d-phenylalanine increased the nisin yield by 93.22% and 101.29%, respectively, as well as significantly increasing the acid resistance of F44. The composition of the cell wall in F44 with exogenously supplied d-Met or d-Phe was further investigated via a vancomycin fluorescence experiment and a liquid chromatography-mass spectrometry assay, which demonstrated that d-Met could be incorporated into the fifth position of peptidoglycan (PG) muropeptides and d-Phe could be added to the fourth and fifth positions. Moreover, overexpression of the PG synthesis gene further enhanced the levels of d-Met and d-Phe involved in PG and increased the survival rate under acid stress and the nisin yield of the strain. This study reveals that the exogenous supply of d-Met or d-Phe can change the composition of the cell wall and influence acid tolerance as well as nisin yield in As d-amino acids play an important role in cell wall synthesis, we analyzed the effects of 19 different d-amino acids on F44, demonstrating that d-Met and d-Phe can participate in peptidoglycan (PG) synthesis and improve the acid resistance and nisin yield of this strain. overexpression further increased the levels of d-Met and d-Phe incorporated into PG and contributed to the acid resistance of the strain. These findings suggest that d-Met and d-Phe can be incorporated into PG to improve the acid resistance and nisin yield of , and this study provides new ideas for the enhancement of nisin production.

摘要

在生长过程中,会遇到各种环境挑战,特别是酸应激。细胞壁可以在环境压力下保持细胞的完整性和形状,而 D-氨基酸在细胞壁合成中发挥重要作用。在这里,通过分析 19 种不同的 D-氨基酸对 F44 生理学的影响,我们发现外源性提供的 D-蛋氨酸和 D-苯丙氨酸分别将乳链菌肽产量提高了 93.22%和 101.29%,同时显著提高了 F44 的耐酸性。通过万古霉素荧光实验和液相色谱-质谱分析进一步研究了外源添加 D-Met 或 D-Phe 的 F44 细胞壁组成,结果表明 D-Met 可以掺入肽聚糖 (PG) 寡肽的第五位,D-Phe 可以添加到第四位和第五位。此外,PG 合成基因的过表达进一步提高了参与 PG 的 D-Met 和 D-Phe 的水平,提高了菌株在酸胁迫下的存活率和乳链菌肽产量。这项研究表明,外源性提供 D-Met 或 D-Phe 可以改变细胞壁的组成,并影响酸耐受性和菌株的乳链菌肽产量。由于 D-氨基酸在细胞壁合成中发挥重要作用,我们分析了 19 种不同的 D-氨基酸对 F44 的影响,结果表明 D-Met 和 D-Phe 可以参与肽聚糖 (PG) 的合成,提高该菌株的耐酸能力和乳链菌肽产量。过表达进一步增加了掺入 PG 的 D-Met 和 D-Phe 的水平,有助于提高菌株的耐酸能力。这些发现表明,D-Met 和 D-Phe 可以掺入 PG 以提高 的耐酸能力和乳链菌肽产量,本研究为提高乳链菌肽产量提供了新的思路。

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