Effects of freeze-drying and microwave vacuum freeze-drying on the activity of IgY: From the perspective of protein structure

被引:9
|
作者
Wang, Zhe [1 ]
Duan, Xu [1 ]
Li, Linlin [1 ]
Ren, Guangyue [1 ]
Wu, Tiantian [1 ]
Chen, Junliang [1 ]
Ang, Yuan [1 ]
Guo, Jingfang [1 ]
Zhao, Mengyue [1 ]
机构
[1] Henan Univ Sci & Technol, Sch Food & Biobiol Engn, Luoyang, Peoples R China
基金
中国国家自然科学基金;
关键词
IgY; freeze-drying; microwave vacuum freeze-drying; FTIR; secondary structure; stability; EGG-YOLK ANTIBODIES; STORAGE STABILITY; CHICKEN; SPECTROSCOPY; DYNAMICS; IMMUNOGLOBULIN; SUCROSE; II;
D O I
10.1080/07373937.2021.2015373
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Freeze-drying (FD) is often used for therapeutic proteins and other biological drugs to extend their shelf life, but it usually reduces the activity and stability of the protein and has a longer drying cycle. A microwave-assisted freeze-drying (MFD) was proposed to produce immunoglobulin of yolk (IgY) preparations. The effects of FD and MFD on the immunological activity and structure of IgY with different amounts of trehalose were investigated. Results showed that lyophilization led to a partial loss of secondary structure in IgY, which resulted in the activity loss. As the trehalose content increased from 0% to 5%, the activity retention of MFD samples increased from 20.31% to 75.57%, which was comparable to FD samples (from 23.57% to 67.78%). However, MFD had a shorter drying cycle when compared with FD. MFD can be a potential alternative to FD as a common therapeutic protein drying method.
引用
收藏
页码:222 / 232
页数:11
相关论文
共 50 条
  • [31] Applications of Freezing and Freeze-Drying in Pharmaceutical Formulations
    Izutsu, Ken-ichi
    SURVIVAL STRATEGIES IN EXTREME COLD AND DESICCATION: ADAPTATION MECHANISMS AND THEIR APPLICATIONS, 2018, 1081 : 371 - 383
  • [32] Exergy analysis of freeze-drying process
    Jiang, LB
    Chen, RL
    Feng, X
    Liu, YZ
    Zhong, GH
    ENERGY CONVERSION AND APPLICATION, VOL I AND II, 2001, : 133 - 138
  • [33] Exploring the chemical space for freeze-drying excipients
    Meng-Lund, Helena
    Holm, Tobias Palle
    Poso, Antti
    Jorgensen, Lene
    Rantanen, Jukka
    Grohganz, Holger
    INTERNATIONAL JOURNAL OF PHARMACEUTICS, 2019, 566 : 254 - 263
  • [34] Formulation of protein-loaded nanoparticles via freeze-drying
    Duran-Lobato, Matilde
    Tovar, Sulay
    Diz, Tadeu de Oliveira
    Chenlo, Miguel
    Alvarez, Clara V.
    Alonso, Maria Jose
    DRUG DELIVERY AND TRANSLATIONAL RESEARCH, 2024, 14 (12) : 3640 - 3653
  • [35] Freeze-drying of bioproducts: putting principles into practice
    Franks, F
    EUROPEAN JOURNAL OF PHARMACEUTICS AND BIOPHARMACEUTICS, 1998, 45 (03) : 221 - 229
  • [36] FREEZE-DRYING OF BIOLOGICAL-MATERIALS
    ADAMS, GDJ
    DRYING TECHNOLOGY, 1991, 9 (04) : 891 - 925
  • [37] FREEZE-DRYING OF THIN PLATES BY MICROWAVES
    SOCHANSKI, J
    GOYETTE, J
    BOSE, T
    AKYEL, C
    BOSISIO, R
    JOURNAL OF MICROWAVE POWER AND ELECTROMAGNETIC ENERGY, 1991, 26 (02) : 90 - 99
  • [38] Technical aspects in freeze-drying of foods
    Duan, Xu
    Yang, Xiaotong
    Ren, Guangyue
    Pang, Yuqi
    Liu, Lili
    Liu, Yunhong
    DRYING TECHNOLOGY, 2016, 34 (11) : 1271 - 1285
  • [39] Freeze-drying characteristics of tropical fruits
    Marques, LG
    Silveira, AM
    Freire, JT
    DRYING TECHNOLOGY, 2006, 24 (04) : 457 - 463
  • [40] Innovative physical techniques in freeze-drying
    Andreeva, Oksana I.
    Shorstkii, Ivan A.
    FOODS AND RAW MATERIALS, 2025, 13 (02) : 341 - 354