Luo Mengxin, Ma Le, Guo Yuxi, Zhu Caihong, Chen Junjie, Zhang Bin, Zhu Jianguo, Jellicoe Matt, He Shan, Zou Yucong, Yuan Yang
School of Chemistry and Chemical Engineering, Guangzhou University, Guangzhou 510006, PR China.
South China University of Technology, School of Food Science and Engineering, Guangzhou 510640, PR China.
Int J Biol Macromol. 2025 Jan;285:138225. doi: 10.1016/j.ijbiomac.2024.138225. Epub 2024 Nov 30.
This research delved into the feasibility of utilizing three nanochitin-chitin nanocrystal (CNC), chitin nanofiber (CNF), and chitin nanosphere (CNS) in complexation with whey protein isolate (WPI) to fabricate complex coacervation and create microcapsules for probiotic encapsulation. The results showed that CNC, CNF, and CNS exhibited notable differences in morphologies, dimensions, and properties due to the respective synthesis methodologies. Nevertheless, all of them maintained a positive charge and were capable of assembling into microcapsules with WPI via electrostatic interactions at optimal pHs. The inclusion of Lactobacillus casei (L. casei) during the complex coacervation phase engendered a shell-like formation around the bacterium within the microcapsule, which enhanced probiotic viability and increased colony-forming unit count. Additionally, these probiotic-loading microcapsules were also processed into tablets, displaying robust structural integrity, augmented protective capabilities, and a distinctive sustained-release profile compared to the microcapsules alone. In summary, this study pioneered the employment of nanochitin formulations in complex coacervation to encapsulate L. casei, spearheading an innovative approach to the creation of a compressed probiotic supplement and contributing to the advancement in the design and fabrication of encapsulation vehicles for active ingredients.
本研究探讨了利用三种纳米几丁质——几丁质纳米晶体(CNC)、几丁质纳米纤维(CNF)和几丁质纳米球(CNS)与乳清蛋白分离物(WPI)复合以形成复合凝聚并制备用于益生菌包封的微胶囊的可行性。结果表明,由于各自的合成方法,CNC、CNF和CNS在形态、尺寸和性质上表现出显著差异。然而,它们都带有正电荷,并且能够在最佳pH值下通过静电相互作用与WPI组装成微胶囊。在复合凝聚阶段加入干酪乳杆菌(L. casei)会在微胶囊内的细菌周围形成壳状结构,这提高了益生菌的活力并增加了菌落形成单位数量。此外,这些负载益生菌的微胶囊还被加工成片剂,与单独的微胶囊相比,显示出强大的结构完整性、增强的保护能力和独特的缓释特性。总之,本研究率先将纳米几丁质配方用于复合凝聚以包封干酪乳杆菌,开创了一种创新方法来制备压缩益生菌补充剂,并为活性成分包封载体的设计和制造进展做出了贡献。