数字农科院2.0

Efficient Production of 2,5-Furandicarboxylic Acid via Chemobiocatalytic Sequential Catalysis of Bread Waste in a One-Pot, Three-Step Process Manner in a Benign Reaction System

文献类型: 外文期刊

作者: Liu, Xinran;He, Yucai;Ma, Cuiluan;Zheng, Mingming

作者机构:

关键词: 2,5-furandicarboxylic acid;waste bread;5-hydroxymethylfurfural;lipase;chemoenzymatic sequential reaction

期刊名称: ACS SUSTAINABLE CHEMISTRY & ENGINEERING

ISSN: 2168-0485

年卷期: 2025 年

页码:

收录情况: SCIE(2025版) ; ; EI(2025版)

摘要: 2,5-Furandicarboxylic acid (FDCA) is an essential biobased dibasic acid with a structure similar to that of the petroleum-based bulk chemical terephthalic acid. In this research, a highly effectual catalytic process was acquired to transform waste bread (WB) into FDCA in a one-pot, three-step approach. First, 5-hydroxymethylfurfural (24.8 wt % yield) was acquired from WB (40 g/L) in the deep eutectic solvent (DES) choline chloride:lactic acid (ChCl:LA)-H2O (ChCl:LA, 15 wt %) medium for 15 min at 180 degrees C. The WB-derived HMF was oxidized to 2,5-furandicarboxaldehyde (97.4% yield) using Escherichia coli pRSFDuet-GOase within 5 h. Afterward, WB-derived DFF was transformed to FDCA (0.291 g of FDCA per g of WB) using immobilized lipase powder CL (CL-IM) in tert-butanol:ethyl acetate (t-BuOH:EtOAc = 1:1, v/v) at 40 degrees C for 9 h. This chemobiological route from food waste to FDCA afforded a new idea for valorization of waste into valuable biobased chemicals in a green and effectual way.

分类号:

  • 相关文献

[1]植物甾醇脂肪酸酯的功效和合成方法的研究进展(英文). 王明霞,黄沁洁,王江薇,黄凤洪. 2007

[2]Evaluation of browning ratio in an image analysis of apple slices at different stages of instant controlled pressure drop-assisted hot-air drying (AD-DIC). Gao, Kun,Zhou, Linyan,Bi, Jinfeng,Yi, Jianyong,Wu, Xinye,Zhou, Mo,Wang, Xueyuan,Liu, Xuan,Gao, Kun,Bi, Jinfeng,Wang, Xueyuan.

[3]Effects of hot-air drying temperature on drying characteristics and color deterioration of rape bee pollen. Yan Xiang Bi,Sara Zielinska,Jia Bao Ni,Xiang Xin Li,Xiao Feng Xue,Wen Li Tian,Wen Jun Peng,Xiao Ming Fang. 2022

[4]Effects of different heat treatments on Maillard reaction products and volatile substances of camel milk. Xiaoxuan Zhao,Yinping Guo,Yumeng Zhang,Xiaoyang Pang,Yunna Wang,Jiaping Lv,Shuwen Zhang. 2023

[5]Sustainably-derived sulfonated pinecone-based hydrochar catalyst for carbohydrate dehydration. Haixin Guo,Yukiya Isoda,Tetsuo Honma,Feng Shen,Richard Lee Smith. 2024

[6]Data-driven insights for enhanced cellulose conversion to 5-hydroxymethylfurfural using machine learning. Yanming Qiao,Ehsan Kargaran,Hao Ji,Meysam Madadi,Saeed Rafieyan,Dan Liu. 2025

[7]Critical advances in separation and purification of 5-hydroxymethylfurfural. Yanxi Qi,Bingkun Chen,Haixin Guo. 2025

[8]Encapsulation of Carbon Nanotubes with Sulfonated Polymer for Photothermal Conversion of Fructose with Superior Productivity. Tang, Yao,Qian, Hengli,Xie, Chao,Xia, Tianliang,Wang, Chengxu,Zhang, Chaojie,Cai, Jiahui,Bai, Xinyu,Yu, Guanjie,Zhou, Shuwen,Qu, Fei,Guo, Haixin,Qi, Xinhua,Ju, Meiting,Hou, Qidong. 2026

[9]Lipase-Catalyzed Acyl-L-Carnitines Synthesis in [Bmim]PF6 Ionic Liquid. Tian, Jin-qiang,Wang, Qiang. 2009

[10]Lipase-catalyzed acylation of l-carnitine with conjugated linoleic acid in [Bmim]PF6 ionic liquid. Tian, Jinqiang,Wang, Qiang,Tian, Jinqiang,Wang, Qiang,Zhang, Zhongyuan. 2009

[11]Microfluidic biocatalysis enhances the esterification of caffeic acid and methanol under continuous-flow conditions. Wang, Sha-Sha,Li, Zhong-Jian,Sheng, Sheng,Wu, Fu-An,Wang, Jun,Sheng, Sheng,Wu, Fu-An,Wang, Jun.

[12]A novel chemoenzymatic synthesis of propyl caffeate using lipase-catalyzed transesterification in ionic liquid. Pang, Na,Gu, Shuang-Shuang,Wang, Jun,Cui, Hong-Sheng,Wang, Fang-Qin,Liu, Xi,Zhao, Xing-Yu,Wu, Fu-An,Wu, Fu-An.

[13]From microalgae oil to produce novel structured triacylglycerols enriched with unsaturated fatty acids. Wang, Jun,Wang, Xu-Dong,Zhao, Xing-Yu,Liu, Xi,Wu, Fu-An,Wang, Jun,Wu, Fu-An,Dong, Tao.

[14]Isolation and biochemical characterization of two lipases from a metagenomic library of China Holstein cow rumen. Liu, Kailang,Wang, Jiaqi,Bu, Dengpan,Zhao, Shengguo,Yu, Ping,Li, Dan,McSweeney, Chris. 2009

[15]Lipase Diversity in Glacier Soil Based on Analysis of Metagenomic DNA Fragments and Cell Culture. Zhang Yuhong,Shi, Pengjun,Meng, Kun,Bai, Yingguo,Wang, Guozeng,Yao, Bin,Zhang Yuhong,Liu, Wanli,Zhan, Zhichun.

[16]High-level expression and biochemical characterization of a novel cold-active lipase from Rhizomucor endophyticus. Duan, Xiaojie,Liu, Yu,Jiang, Zhengqiang,Yang, Shaoqing,Zheng, Mingming.

[17]Characterization of a novel lipase and its specific foldase from Acinetobacter sp XMZ-26. Zheng, Xiaomei,Wu, Ningfeng,Fan, Yunliu. 2012

[18]Progress of Lipase-Catalyzed Ester Synthesis in Ionic Liquid. Li Jing,Wang Jun,Zhang Leixia,Gu Shuangshuang,Wu Fuan,Guo Yuewei,Wu Fuan,Guo Yuewei. 2012

[19]Heterologous production of an acidic thermostable lipase with broad-range pH activity from thermophilic fungus Neosartorya fischeri P1. Sun, Qiaoqiao,Wang, Hui,Luo, Huiying,Shi, Pengjun,Bai, Yingguo,Yao, Bin,Huang, Huoqing,Sun, Qiaoqiao,Zhang, Huitu,Lu, Fuping.

[20]Probing the molecular determinant of the lipase-specific foldase Lif26 for the interaction with its cognate Lip26. Zheng, Xiaomei,Tian, Jian,Wu, Ningfeng,Fan, Yunliu.

作者其他论文 更多>>