Modelling Approach for the Continuous Biocatalytic Synthesis of N-Acetylneuraminic Acid in Packed Bed Reactors

被引:0
作者
Hoelting, Kristin [1 ,2 ]
Assmann, Miriam [1 ]
Bubenheim, Paul [2 ]
Liese, Andreas [2 ]
Kuballa, Juergen [1 ]
机构
[1] GALAB Labs GmbH, Schleusengraben 7, D-21029 Hamburg, Germany
[2] Hamburg Univ Technol, Inst Tech Biocatalysis, Denickestr 15, D-21073 Hamburg, Germany
关键词
immobilisation; continuous biocatalysis; N-acetylneuraminic acid; packed bed reactor; flow tube; GlcNAc; 2-epimerase; Neu5Ac lyase; D-GLUCOSAMINE; 2-EPIMERASE; ACETYL-D-GLUCOSAMINE; SIALIC-ACID; EXTINCTION COEFFICIENTS; PURIFICATION; LYASE; IMMOBILIZATION; ALDOLASE; PERFORMANCE;
D O I
10.3390/pr12102191
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Continuous flow technologies have become increasingly important for biocatalytic processes. In this study, we present the application and modelling of covalently immobilised N-acetylglucosamine 2-epimerase and N-acetylneuraminic acid lyase in packed bed reactors for the synthesis of N-acetylneuraminic acid. The immobilised enzymes were stable under continuous flow process conditions with half-life times of >28 d (epimerase immobilised on hexamethylamino methacrylate HA403/M) or 58 d (lyase immobilised on dimenthylamino methacrylate ECR8309M), suitable for continuous flow applications. Kinetic studies revealed Michaelis-Menten kinetic behaviour for both enzymes. The kinetic parameters and the inhibitions were analysed under continuous flow conditions and were integrated into a process model using Python. The model was validated by varying flow rates, the mass of immobilised enzymes and the reactor dimensions and shows a low error compared to the measured data. An error accuracy of 6% (epimerase) or 9% (lyase) was achieved. The product concentrations of the enzyme cascade at the end of the packed bed reactor can be predicted with an accuracy of 9% for the calculation of a large column (84.5 mL) or of 24% if several small columns (2.5 mL, 0.8 mL) are connected in series. The developed model has proved to be valid and will be used to optimise the process with respect to substrate concentrations, reactor dimensions and flow rate.
引用
收藏
页数:25
相关论文
共 50 条
  • [41] Degradation Kinetics and Shelf Life of N-acetylneuraminic Acid at Different pH Values
    Zhu, Weiwei
    Chen, Xiangsong
    Yuan, Lixia
    Wu, Jinyong
    Yao, Jianming
    MOLECULES, 2020, 25 (21):
  • [42] Development and optimization of N-acetylneuraminic acid biosensors in Bacillus subtilis
    Zhang, Xiaolong
    Cao, Yanting
    Liu, Yanfeng
    Liu, Long
    Li, Jianghua
    Du, Guocheng
    Chen, Jian
    BIOTECHNOLOGY AND APPLIED BIOCHEMISTRY, 2020, 67 (04) : 693 - 705
  • [43] Presence of N-acetylneuraminic acid in the lung during postnatal development
    de Fatima Martins, Maria
    Reis, Marco S.
    Honorio-Ferreira, Ana
    Alberto Goncalves, Carlos
    EUROPEAN JOURNAL OF HISTOCHEMISTRY, 2020, 64 (02): : 148 - 155
  • [44] Chemistry of N-acetylneuraminic acid (Neu5Ac)
    Furuhata, K
    TRENDS IN GLYCOSCIENCE AND GLYCOTECHNOLOGY, 2004, 16 (89) : 143 - 169
  • [45] Quantitation of N-acetylneuraminic (sialic) acid in bovine glycomacropeptide (GMP)
    Fernando, Susil Francis
    Woonton, Brad William
    JOURNAL OF FOOD COMPOSITION AND ANALYSIS, 2010, 23 (04) : 359 - 366
  • [46] Increasing brain N-acetylneuraminic acid alleviates hydrocephalus-induced neurological deficits
    Wang, Zhangyang
    Nie, Xiaoqun
    Gao, Fang
    Tang, Yanmin
    Ma, Yuanyuan
    Zhang, Yiying
    Gao, Yanqin
    Yang, Chen
    Ding, Jing
    Wang, Xin
    CNS NEUROSCIENCE & THERAPEUTICS, 2023, 29 (11) : 3183 - 3198
  • [47] Synthesis of novel N-acetylneuraminic acid derivatives as substrates for rapid detection of influenza virus neuraminidase
    Yang, Wei
    Liu, Xiaoyu
    Peng, Xiaoxia
    Li, Pei
    Wang, Tianxin
    Tai, Guihua
    Li, X. James
    Zhou, Yifa
    CARBOHYDRATE RESEARCH, 2012, 359 : 92 - 96
  • [48] Prognostic Value of Elevated Levels of Plasma N-Acetylneuraminic Acid in Patients With Heart Failure
    Li, Chenze
    Zhao, Mingming
    Xiao, Lei
    Wei, Haoran
    Wen, Zheng
    Hu, Dong
    Yu, Bo
    Sun, Yang
    Gao, Jianing
    Shen, Xiaoqing
    Zhang, Qi
    Cao, Huanhuan
    Huang, Jin
    Huang, Wei
    Li, Ke
    Huang, Man
    Ni, Li
    Yu, Ting
    Ji, Liang
    Xu, Yangkai
    Liu, Gang
    Konerman, Matthew C.
    Zheng, Lemin
    Wang, Dao Wen
    CIRCULATION-HEART FAILURE, 2021, 14 (11) : E008459
  • [49] Surface-enhanced Raman scattering of N-acetylneuraminic acid on silver nanoparticle surface
    Vinogradova, Ekaterina
    Tlahuice-Flores, Alfredo
    Jesus Velazquez-Salazar, J.
    Larios-Rodriguez, Eduardo
    Jose-Yacaman, Miguel
    JOURNAL OF RAMAN SPECTROSCOPY, 2014, 45 (09) : 730 - 735
  • [50] Pathway Engineering of Bacillus subtilis for Enhanced N-Acetylneuraminic Acid Production via Whole-Cell Biocatalysis
    Zhao, Lin
    Tian, Rongzhen
    Shen, Qingyang
    Liu, Yanfeng
    Liu, Long
    Li, Jianghua
    Du, Guocheng
    BIOTECHNOLOGY JOURNAL, 2019, 14 (07)