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Engineering stable pseudomonas putida s12 by crispr for 2,5-furandicarboxylic acid (fdca) production
期刊文章

Engineering stable pseudomonas putida s12 by crispr for 2,5-furandicarboxylic acid (fdca) production

Nam Ngoc Pham, Cho-Yi Chen, Hung Li, Mai Thanh Thi Nguyen, Phung Kim Phi Nguyen, Shen-Long Tsai, June-Yen Chou, Theresia Cecylia RamliYu-Chen Hu
ACS Synthetic Biology, 卷.9(5), 頁碼.1138-1149
05/2020
PMID: 32298581

摘要

Crispr Fdca Genome engineering Hmf Polyploid Pseudomonas putida S12 Biomedical Engineering Biochemistry Genetics and Molecular Biology (miscellaneous)
FDCA (2,5-furandicarboxylic acid) can be enzymatically converted from HMF (5-hydroxymethylfurfural). Pseudomonas putida S12 is promising for FDCA production, but generating stable P. putida S12 is difficult due to its polyploidy and lack of genome engineering tools. Here we showed that coupling CRISPR and λ-Red recombineering enabled one-step gene integration with high efficiency and frequency, and simultaneously replaced endogenous genes in all chromosomes. Using this approach, we generated two stable P. putida S12 strains expressing HMF/furfural oxidoreductase (HMFH) and HMF oxidase (HMFO), both being able to convert 50 mM HMF to ≈42-43 mM FDCA in 24 h. Cosupplementation of MnO 2 and CaCO 3 to the medium drastically improved the cell tolerance to HMF and enhanced FDCA production. Cointegrating HMFH and HMFT1 (HMF transporter) genes further improved FDCA production, enabling the cells to convert 250 mM HMF to 196 mM (30.6 g/L) FDCA in 24 h. This study implicates the potentials of CRISPR for generating stable P. putida S12 strains for FDCA production.

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