Characterization of a non-phosphotransferase system for cis,cis-muconic acid production in Corynebacterium glutamicum

被引:21
|
作者
Shin, Woo-Shik [1 ]
Lee, Dohoon [1 ,2 ]
Lee, Sang Joung [3 ]
Chun, Gie-Taek [4 ]
Choi, Si-Sun [5 ]
Kim, Eung-Soo [5 ]
Kim, Sangyong [1 ,2 ]
机构
[1] Korea Inst Ind Technol, Green Chem & Mat Grp, Cheonan Si 31056, Chungcheongnam, South Korea
[2] Korea Univ Sci & Technol UST, Green Proc & Syst Engn Major, Daejeon 34141, South Korea
[3] STR Biotech Co Ltd, Bioplaza 4-3,56 Soyanggang Ro, Chuncheon Si 200957, Gangwon Do, South Korea
[4] Kangwon Natl Univ, Dept Mol Biosci, Chuncheon Si 200701, Gangwon Do, South Korea
[5] Inha Univ, Dept Biol Engn, Incheon 402751, South Korea
关键词
Corynebacterium glutamicum; cis; cis-muconic acid; Phosphotransferase system; Carbon flux; ESCHERICHIA-COLI; ADIPIC ACID; GLUCOSE; TRANSPORT;
D O I
10.1016/j.bbrc.2018.03.146
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Cis,cis-muconic acid (CCM) is a biochemical material that can be used for the production of various plastics and polymers and is particularly gaining attention as an adipic acid precursor for the synthesis of nylon-6,6. In the current study, the production of CCM was first attempted by introducing a newly developed protocatechuate (PCA) decarboxylase from Corynebacterium glutamicum 13032 to inha103, which completed the biosynthetic pathway therein. To improve CCM productivity, a phosphoenol pyruvate (PEP)-dependent phosphotransferase system (PTS) that consumed the existing glucose was developed, in the form of a strain with a non-PTS that did not consume PEP. To improve glucose uptake, we developed P25 strain, in which ioIR (a transcriptional regulator gene) was additionally deleted. Strain P28, a P25 derivative expressing PCA decarboxylase, produced 4.01 of CCM, which was 14% more than that produced by the parental strain. Moreover, strains P29 and P30, with an active pentose phosphate pathway and overexpressing important genes (qsuB) in the metabolic pathway, produced 436 and 4.5 g/L. of CCM, respectively. Particularly, the yield per glucose in strain P30 was similar to that of the fed-batch culture of Escherichia coil, which has the highest reported yield of 22% (mol/mol). These results are underpinned by the characteristics of the non-PTS with increased PEP availability and a strain with deletion of the ioIR gene, which greatly increased glucose uptake. (C) 2018 The Authors. Published by Elsevier Inc. This is an open access article under the CC BY-NC-ND license.
引用
收藏
页码:279 / 284
页数:6
相关论文
共 46 条
  • [21] High-yield Production of cis,cis-Muconic Acid from Catechol in Aqueous Solution by Biocatalyst
    Kaneko, Aya
    Ishii, Yoshitaka
    Kirimura, Kohtaro
    CHEMISTRY LETTERS, 2011, 40 (04) : 381 - 383
  • [22] Comments on "Thermodynamics of cis,cis-muconic acid solubility in various polar solvents at low temperature range"
    Carraher, Jack M.
    Matthiesen, John E.
    Tessonnier, Jean-Philippe
    JOURNAL OF MOLECULAR LIQUIDS, 2016, 224 : 420 - 422
  • [23] Microbial synthesis of cis,cis-muconic acid by Sphingobacterium sp GCG generated from effluent of a styrene monomer (SM) production plant
    Wu, CM
    Lee, TH
    Lee, SN
    Lee, YA
    Wu, JY
    ENZYME AND MICROBIAL TECHNOLOGY, 2004, 35 (6-7) : 598 - 604
  • [24] Recombinant xylose-fermenting yeast construction for the co-production of ethanol and cis,cis-muconic acid from lignocellulosic biomass
    Liu T.
    Peng B.
    Huang S.
    Geng A.
    Bioresource Technology Reports, 2020, 9
  • [25] Inducible Synthetic Growth Regulation Using the ClpXP Proteasome Enhances cis,cis-Muconic Acid and Glycolic Acid Yields in Saccharomyces cerevisiae
    Kakko, Natalia
    Rantasalo, Anssi
    Koponen, Tino
    Vidgren, Virve
    Kannisto, Matti
    Maiorova, Natalia
    Nygren, Heli
    Mojzita, Dominik
    Penttila, Merja
    Jouhten, Paula
    ACS SYNTHETIC BIOLOGY, 2023, 12 (04): : 1021 - 1033
  • [26] Bioprocess development and scale-up for cis,cis-muconic acid production from glucose and xylose by Pseudomonas putida
    Mokwatlo, Sekgetho C.
    Klein, Bruno C.
    Benavides, Pahola Thathiana
    Tan, Eric C. D.
    Kneucker, Colin M.
    Ling, Chen
    Singer, Christine A.
    Lyons, Robert
    Sanchez i Nogue, Violeta
    Hestmark, Kelley V.
    Ingraham, Morgan A.
    Ramirez, Kelsey J.
    Johnson, Christopher W.
    Beckham, Gregg T.
    Salvachua, Davinia
    GREEN CHEMISTRY, 2024, 26 (19) : 10152 - 10167
  • [27] Engineering catechol 1,2-dioxygenase by design for improving the performance of the cis, cis-muconic acid synthetic pathway in Escherichia coli
    Han, Li
    Liu, Pi
    Sun, Jixue
    Wu, Yuanqing
    Zhang, Yuanyuan
    Chen, Wujiu
    Lin, Jianping
    Wang, Qinhong
    Ma, Yanhe
    SCIENTIFIC REPORTS, 2015, 5
  • [28] Whole-Cell Bioconversion of Renewable Biomasses-Related Aromatics to cis,cis-Muconic Acid
    Molinari, Filippo
    Pollegioni, Loredano
    Rosini, Elena
    ACS SUSTAINABLE CHEMISTRY & ENGINEERING, 2023, 11 (06) : 2476 - 2485
  • [29] DO-STAT FED-BATCH PRODUCTION OF CIS,CIS-MUCONIC ACID FROM BENZOIC-ACID BY PSEUDOMONAS-PUTIDA BM014
    BANG, SG
    CHOI, CY
    JOURNAL OF FERMENTATION AND BIOENGINEERING, 1995, 79 (04): : 381 - 383
  • [30] Central composite design optimized adsorptive removal of cis,cis-muconic acid by weak basic anion exchangers and activated Carbon
    Isayev, Ismayil
    Demir, Ozge
    Gok, Asli
    Kirbaslar, Sah Ismail
    BIOMASS CONVERSION AND BIOREFINERY, 2022, 14 (22) : 28713 - 28727