Progress in Microcapsule Wall Materials and Preparation Techniques

被引:1
作者
Zhang Z. [1 ]
Zhong S. [1 ]
Peng F. [1 ]
Zeng Y. [1 ]
Zong M. [1 ]
Lou W. [1 ]
机构
[1] School of Food Science and Engineering, South China University of Technology, Guangzhou
来源
Shipin Kexue/Food Science | 2020年 / 41卷 / 09期
关键词
Microencapsulation technology; Modified wall material; Natural wall material; Preparation methods;
D O I
10.7506/spkx1002-6630-20190625-320
中图分类号
学科分类号
摘要
Microencapsulation technology has been widely applied in the food industry to effectively improve the applications of bioactive substances. The development of the food industry has spurred researchers to constantly improve this technology. In this article, the common wall materials and methods used for the preparation of microcapsules are reviewed. Firstly, the properties and applications of natural microcapsule wall materials and modified wall materials are summarized. Then, the application process and improvement strategies of layer-by-layer self-assembling, complex coacervation and yeast-cell-based microencapsulation are elaborated. Besides, the effects of the improvement strategies are also presented, deepening the understanding of the microcapsule preparation techniques. Finally, the concerns about microcapsule wall materials and preparation methods, as well as the development trends of microencapsulation technology are discussed. This review is expected to provide a theoretical basis for promoting further development of microencapsulation technology. © 2020, China Food Publishing Company. All right reserved.
引用
收藏
页码:246 / 253
页数:7
相关论文
共 72 条
  • [61] ANSELMO A C, MCHUGH K J, WEBSTER J, Et al., Layer-bylayer encapsulation of probiotics for delivery to the microbiome, Advanced Materials, 28, 43, pp. 9486-9490, (2016)
  • [62] FU Jingcheng, SCHLENOFF J B., Driving forces for oppositely charged polyion association in aqueous solutions: enthalpic, entropic, but not electrostatic, Journal of the American Chemical Society, 138, 3, pp. 980-990, (2016)
  • [63] SPRUIJT E, WESTPHAL A H, BORST J W, Et al., Binodal compositions of polyeleetrolyte complexes, Macromolecules, 43, 15, pp. 6476-6484, (2010)
  • [64] LU Yi, ZHANG Xiaoming, ZHANG Haiyang, Et al., The study of pH-dependent complexation between gelatin and gum arabic by morphology evolution and conformational transition, Food Hydrocolloids, 30, 1, pp. 323-332, (2013)
  • [65] WANG Bo, ADHIKARI B, BARROW C J., Optimisation of the microencapsulation of tuna oil in gelatin-sodium hexametaphosphate using complex coacervation, Food Chemistry, 158, pp. 358-365, (2014)
  • [66] ESFAHANI R, JAFARI S M, JAFARPOUR A, Et al., Loading of fish oil into nanocarriers prepared through gelatin-gum Arabic complexation, Food Hydrocolloids, 90, pp. 291-298, (2019)
  • [67] YANG Ziming, PENG Zheng, LI Jihua, Et al., Development and evaluation of novel flavour microcapsules containing vanilla oil using complex coacervation approach, Food Chemistry, 145, pp. 272-277, (2014)
  • [68] YAO Mingfei, LI Bo, YE Haowei, Et al., Enhanced viability of probiotics (Pediococcus pentosaceus Li05) by encapsulation in microgels doped with inorganic nanoparticles, Food Hydrocolloids, 83, pp. 246-252, (2018)
  • [69] SHI Guorong, RAO Liqun, YU Huazhong, Et al., Yeast-cellbased microencapsulation of chlorogenic acid as a water-soluble antioxidant, Journal of Food Engineering, 80, 4, pp. 1060-1067, (2007)
  • [70] LIMA A D S, LANDULFO G A, COSTA-JUNIOR L M., Repellent effects of encapsulated carvacrol on the rhipicephalus (Boophilus)microplus (Acari: Ixodidae)[J], Journal of Medical Entomology, 56, 3, pp. 881-885, (2019)