Enzyme immobilization with plant-based polysaccharides through complex coacervation

被引:0
|
作者
Khongkomolsakul, Waritsara [1 ]
Yang, Eunhye [1 ]
Dadmohammadi, Younas [1 ]
Dong, Hongmin [1 ]
Lin, Tiantian [1 ]
Huang, Yunan [1 ]
Abbaspourrad, Alireza [1 ]
机构
[1] Cornell Univ, Coll Agr & Life Sci, Dept Food Sci, 243 Stocking Hall, Ithaca, NY 14850 USA
基金
比尔及梅琳达.盖茨基金会; 美国国家科学基金会;
关键词
Enzyme immobilization; Phytase; Polysaccharide; Molecular docking; Protein-polysaccharide intermolecular; interaction; CARRAGEENAN; PROTEIN; PECTIN; PHYTASES; GELATION; GUI; PH;
D O I
10.1016/j.lwt.2025.117537
中图分类号
TS2 [食品工业];
学科分类号
0832 ;
摘要
Plant-based polysaccharides (PSs) were used to immobilize phytase in a coacervate system. Molecular docking predicted the intermolecular interactions and conformations between the phytase and the polysaccharide and correlated them to the activity recovery of phytase in the coacervate complex. PSs with two different functional groups, sulfate (iota (IC), lambda (LC), and kappa (KC) carrageenan) and carboxylate (low methoxyl pectin (LMP) and sodium alginate (SA)) were investigated. The optimized conditions for coacervation and activity recovery were pH 4 with a phytase-to-polysaccharide volume ratio of 12:1. Zeta potential measurements, FTIR spectroscopy, and molecular docking confirmed that electrostatic interactions and hydrogen bonding were the main driving forces for coacervate formation. Coacervate complexes of phytase formed with LMP, SA, or KC showed a high activity retention after immobilization, with approximately 30% yield of complex and 75% immobilization efficiency of the phytase. The lower enzyme activity retention observed for IC and LC complexes is attributed to these PSs binding to the enzyme's active site. Overall, this work contributes to the body of knowledge about intermolecular interactions between phytase and polysaccharides and can serve as a guide to formulating stable, functional ingredients for a plant-based diet.
引用
收藏
页数:12
相关论文
共 50 条
  • [41] Plant-based skin toners
    不详
    SOAP COSMETICS CHEMICAL SPECIALTIES, 1998, 74 (09): : 76 - 76
  • [42] Rediscovering plant-based drugs
    John Littleton
    Deane Falcone
    H. Maelor Davies
    Nature Biotechnology, 2003, 21 : 843 - 844
  • [43] Plant-based mucosal immunization
    Snowden, SL
    Langridge, WHR
    BIOTECHNOLOGY & GENETIC ENGINEERING REVIEWS, VOL 20, 2003, 20 : 165 - 182
  • [44] Recommending plant-based diets
    Smith, Scott D.
    CANADIAN FAMILY PHYSICIAN, 2017, 63 (12) : 916 - 916
  • [45] Defining “plant-based meats”
    Richard Hoffman
    European Journal of Clinical Nutrition, 2024, 78 : 72 - 73
  • [46] Plant-based biopharmaceutical engineering
    Lukas Eidenberger
    Benjamin Kogelmann
    Herta Steinkellner
    Nature Reviews Bioengineering, 2023, 1 (6): : 426 - 439
  • [47] More plant-based dishes
    Derrien, Elisa
    ACTUALITES PHARMACEUTIQUES, 2021, 60 (607): : 4 - 4
  • [48] Plant-based oral delivery of β-glucocerebrosidase as an enzyme replacement therapy for Gaucher's disease
    Shaaltiel, Yoseph
    Gingis-Velitski, Svetlana
    Tzaban, Salit
    Fiks, Nadia
    Tekoah, Yoram
    Aviezer, David
    PLANT BIOTECHNOLOGY JOURNAL, 2015, 13 (08) : 1033 - 1040
  • [49] A Plant-Based Nutrition Program
    Evans, Joanne
    Magee, Alexandra
    Dickman, Kathy
    Sutter, Rebecca
    Sutter, Caroline
    AMERICAN JOURNAL OF NURSING, 2017, 117 (03) : 57 - 62
  • [50] Plant-based production of biopharmaceuticals
    Fischer, R
    Stoger, E
    Schillberg, S
    Christou, P
    Twyman, RM
    CURRENT OPINION IN PLANT BIOLOGY, 2004, 7 (02) : 152 - 158