Skip Navigation
Skip to contents

Journal of Microbiology : Journal of Microbiology

OPEN ACCESS
SEARCH
Search

Search

Page Path
HOME > Search
1 "Nitrate pollution"
Filter
Filter
Article category
Keywords
Publication year
Journal Article
Biosynthesis of adipic acid in metabolically engineered Saccharomyces cerevisiae
Xi Zhang , Yingli Liu , Jing Wang , Yunying Zhao , Yu Deng
J. Microbiol. 2020;58(12):1065-1075.   Published online October 23, 2020
DOI: https://doi.org/10.1007/s12275-020-0261-7
  • 51 View
  • 0 Download
  • 13 Web of Science
  • 13 Crossref
AbstractAbstract
Adipic Acid (AA) is a valued platform chemical compound, which can be used as a precursor of nylon-6,6. Due to the generation of an enormous amount of nitric oxide metabolites and the growing depletion of oil resources as a result of AA production from a mixture of cyclohexanol and cyclohexanone, the microbial methods for synthesizing AA have attracted significant attention. Of the several AA-producing pathways, the reverse adipate degradation pathway in Thermobifida fusca (Tfu RADP) is reported to be the most efficient, which has been confirmed in Escherichia coli. In this study, the heterologous Tfu RADP was constructed for producing AA in S. cerevisiae by co-expressing genes of Tfu_ 0875, Tfu_2399, Tfu_0067, Tfu_1647, Tfu_2576, and Tfu_ 2576. The AA titer combined with biomass, cofactors and other by-products was all determined after fermentation. During batch fermentation in a shake flask, the maximum AA titer was 3.83 mg/L, while the titer increased to 10.09 mg/L during fed-batch fermentation in a 5-L bioreactor after fermentation modification.

Citations

Citations to this article as recorded by  
  • Experimental, modeling and optimisation of adipic acid reactive extraction using ionic liquids
    Elena Niculina Dragoi, Alexandra Cristina Blaga, Dan Cascaval, Anca Irina Galaction
    Journal of Molecular Liquids.2024; 410: 125564.     CrossRef
  • Structure sensitivity of the electrochemical hydrogenation of cis,cis-muconic acid to hexenedioic acid and adipic acid
    Deep M. Patel, Prathamesh T. Prabhu, Geet Gupta, Marco Nazareno Dell'Anna, Samantha Kling, Huy T. Nguyen, Jean-Philippe Tessonnier, Luke T. Roling
    Green Chemistry.2024; 26(8): 4506.     CrossRef
  • Exploring the Potential of Bio-plasticizers: Functions, Advantages, and Challenges in Polymer Science
    Felipe Martins de Souza, Ram K. Gupta
    Journal of Polymers and the Environment.2024; 32(11): 5499.     CrossRef
  • Poly (Butylene Adipate‐Co‐Terephthalate) (PBAT) – Based Biocomposites: A Comprehensive Review
    Blessing E. Itabana, Amar K. Mohanty, Phil Dick, Mohini Sain, Atul Bali, Mike Tiessen, Loong‐Tak Lim, Manjusri Misra
    Macromolecular Materials and Engineering.2024;[Epub]     CrossRef
  • Comparative analysis of biotechnological and catalytic approaches to the production of organic acids
    K. N. Sorokina, Y. V. Samoylova, V. N. Parmon
    Kataliz v promyshlennosti.2024; 24(3): 73.     CrossRef
  • Mid–Long Chain Dicarboxylic Acid Production via Systems Metabolic Engineering: Progress and Prospects
    Shanna Gu, Fuzhou Zhu, Lin Zhang, Jianping Wen
    Journal of Agricultural and Food Chemistry.2024; 72(11): 5555.     CrossRef
  • Toward the use of mixed microbial cultures for the biological production of adipic and levulinic acid
    Fernanda Pinto-Ibieta, Mara Cea, Antonio Serrano, Fernando E. Felissia, María Cristina Area, Francisco Cabrera, Gustavo Ciudad
    Frontiers in Microbiology.2023;[Epub]     CrossRef
  • Producing malonate in Saccharomyces cerevisiae via the β-alanine pathway
    Shiyun Li, Wenxuan Fu, Ruifang Su, Yunying Zhao, Yu Deng
    Systems Microbiology and Biomanufacturing.2023; 3(2): 328.     CrossRef
  • Engineering yeast cell factories to produce biodegradable plastics and their monomers: Current status and prospects
    Feng-Li Zhang, Lin Zhang, Du-Wen Zeng, Sha Liao, Yachao Fan, Verawat Champreda, Weerawat Runguphan, Xin-Qing Zhao
    Biotechnology Advances.2023; 68: 108222.     CrossRef
  • Sustainable Routes for the Synthesis of Renewable Adipic Acid from Biomass Derivatives
    Man Lang, Hao Li
    ChemSusChem.2022;[Epub]     CrossRef
  • Research Progress on the Construction of Artificial Pathways for the Biosynthesis of Adipic Acid by Engineered Microbes
    Yuchen Ning, Huan Liu, Renwei Zhang, Yuhan Jin, Yue Yu, Li Deng, Fang Wang
    Fermentation.2022; 8(8): 393.     CrossRef
  • Opportunities in the microbial valorization of sugar industrial organic waste to biodegradable smart food packaging materials
    Sandhya Jayasekara, Lakshika Dissanayake, Lahiru N. Jayakody
    International Journal of Food Microbiology.2022; 377: 109785.     CrossRef
  • Implementation of Synthetic Pathways to Foster Microbe-Based Production of Non-Naturally Occurring Carboxylic Acids and Derivatives
    Ana Vila-Santa, Fernão C. Mendes, Frederico C. Ferreira, Kristala L. J. Prather, Nuno P. Mira
    Journal of Fungi.2021; 7(12): 1020.     CrossRef

Journal of Microbiology : Journal of Microbiology
TOP