Biopolymer encapsulation for improved probiotic delivery: Advancements and challenges.

IF 2.7 Q3 MICROBIOLOGY AIMS Microbiology Pub Date : 2024-11-15 eCollection Date: 2024-01-01 DOI:10.3934/microbiol.2024043
Srirengaraj Vijayaram, Reshma Sinha, Caterina Faggio, Einar Ringø, Chi-Chung Chou
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引用次数: 0

Abstract

Probiotics, known for their health benefits as living microorganisms, hold significant importance across various fields, including agriculture, aquaculture, nutraceuticals, and pharmaceuticals. Optimal delivery and storage of probiotic cells are essential to maximize their effectiveness. Biopolymers, derived from living sources, plants, animals, and microbes, offer a natural solution to enhance probiotic capabilities and they possess distinctive qualities such as stability, flexibility, biocompatibility, sustainability, biodegradability, and antibacterial properties, making them ideal for probiotic applications. These characteristics create optimal environments for the swift and precisely targeted delivery of probiotic cells that surpass the effectiveness of unencapsulated probiotic cells. Various encapsulation techniques using diverse biopolymers are employed for this purpose. These techniques are not limited to spray drying, emulsion, extrusion, spray freeze drying, layer by layer, ionic gelation, complex coacervation, vibration technology, electrospinning, phase separation, sol-gel encapsulation, spray cooling, fluidized, air suspension coating, compression coating, co-crystallization coating, cyclodextrin inclusion, rotating disk, and solvent evaporation methods. This review addresses the latest advancements in probiotic encapsulation materials and techniques, bridging gaps in our understanding of biopolymer-based encapsulation systems. Specifically, we address the limitations of current encapsulation methods in maintaining probiotic viability under extreme environmental conditions and the need for more targeted and efficient delivery mechanisms. Focusing on the interactions between biopolymers and probiotics reveals how customized encapsulation approaches can enhance probiotic stability, survival, and functionality. Through detailed comparative analysis of the effectiveness of various encapsulation methods, we identify key strategies for optimizing probiotic deployment in challenging conditions such as high-temperature processing, acidic environments, and gastrointestinal transit. The findings presented in this review highlight the superior performance of novel encapsulation methods using biopolymer blends and advanced technologies like electrospinning and layer-by-layer assembly, which provide enhanced protection and controlled release of probiotics by offering insights into the development of more robust encapsulation systems that ensure the sustained viability and bioavailability of probiotics, thus advancing their application across multiple industries. In conclusion, this paper provides the foundation for future research to refine encapsulation techniques to overcome the challenges of probiotic delivery in clinical and commercial settings.

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用于改善益生菌输送的生物聚合物封装:进展和挑战。
益生菌以其作为活微生物的健康益处而闻名,在包括农业、水产养殖、营养食品和制药在内的各个领域都具有重要意义。益生菌细胞的最佳输送和储存对于最大限度地发挥其功效至关重要。生物聚合物来源于活的植物、动物和微生物,为增强益生菌的能力提供了天然的解决方案,它们具有独特的品质,如稳定性、柔韧性、生物相容性、可持续性、生物降解性和抗菌性,使它们成为益生菌应用的理想选择。这些特性为益生菌细胞的快速和精确靶向递送创造了最佳环境,超越了未封装的益生菌细胞的有效性。为此目的采用了使用不同生物聚合物的各种包封技术。这些技术不限于喷雾干燥、乳化、挤压、喷雾冷冻干燥、逐层、离子凝胶、复合凝聚、振动技术、静电纺丝、相分离、溶胶-凝胶包封、喷雾冷却、流化、空气悬浮包覆、压缩包覆、共结晶包覆、环糊精包覆、旋转圆盘、溶剂蒸发等方法。本文综述了益生菌包封材料和技术的最新进展,弥合了我们对生物聚合物包封系统的理解差距。具体来说,我们解决了当前封装方法在极端环境条件下维持益生菌活力的局限性,以及对更有针对性和更有效的递送机制的需求。关注生物聚合物和益生菌之间的相互作用揭示了定制的封装方法如何提高益生菌的稳定性,存活率和功能。通过对各种封装方法的有效性进行详细的对比分析,我们确定了在高温加工、酸性环境和胃肠道运输等具有挑战性的条件下优化益生菌部署的关键策略。本综述的研究结果强调了使用生物聚合物混合物和先进技术(如静电纺丝和层接层组装)的新型封装方法的优越性能,这些方法通过开发更强大的封装系统提供了增强的保护和控制益生菌的释放,从而确保益生菌的持续生存能力和生物利用度,从而促进益生菌在多个行业的应用。总之,本文为未来的研究提供了基础,以完善胶囊技术,以克服益生菌在临床和商业环境中的输送挑战。
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来源期刊
AIMS Microbiology
AIMS Microbiology MICROBIOLOGY-
CiteScore
7.00
自引率
2.10%
发文量
22
审稿时长
8 weeks
期刊最新文献
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