Sun Qiqi, Yin Sheng, He Yingxu, Cao Yi, Jiang Chunping
Jinan Microecological Biomedicine Shandong Laboratory, Shounuo City Light West Block, Jinan 250117, China.
Collaborative Innovation Center of Advanced Microstructures, Nanjing University, Nanjing 210093, China.
Nanomaterials (Basel). 2023 Jul 27;13(15):2185. doi: 10.3390/nano13152185.
Probiotics have garnered significant attention in recent years due to their potential advantages in diverse biomedical applications, such as acting as antimicrobial agents, aiding in tissue repair, and treating diseases. These live bacteria must exist in appropriate quantities and precise locations to exert beneficial effects. However, their viability and activity can be significantly impacted by the surrounding tissue, posing a challenge to maintain their stability in the target location for an extended duration. To counter this, researchers have formulated various strategies that enhance the activity and stability of probiotics by encapsulating them within biomaterials. This approach enables site-specific release, overcoming technical impediments encountered during the processing and application of probiotics. A range of materials can be utilized for encapsulating probiotics, and several methods can be employed for this encapsulation process. This article reviews the recent advancements in probiotics encapsulated within biomaterials, examining the materials, methods, and effects of encapsulation. It also provides an overview of the hurdles faced by currently available biomaterial-based probiotic capsules and suggests potential future research directions in this field. Despite the progress achieved to date, numerous challenges persist, such as the necessity for developing efficient, reproducible encapsulation methods that maintain the viability and activity of probiotics. Furthermore, there is a need to design more robust and targeted delivery vehicles.
近年来,益生菌因其在多种生物医学应用中的潜在优势而备受关注,例如作为抗菌剂、辅助组织修复和治疗疾病。这些活细菌必须以适当的数量存在于精确的位置才能发挥有益作用。然而,它们的生存能力和活性会受到周围组织的显著影响,这对在目标位置长时间维持其稳定性构成了挑战。为应对这一问题,研究人员制定了各种策略,通过将益生菌封装在生物材料中来提高其活性和稳定性。这种方法能够实现位点特异性释放,克服了益生菌加工和应用过程中遇到的技术障碍。一系列材料可用于封装益生菌,并且有几种方法可用于此封装过程。本文综述了生物材料封装益生菌的最新进展,研究了封装材料、方法和效果。它还概述了目前基于生物材料的益生菌胶囊所面临的障碍,并提出了该领域未来潜在的研究方向。尽管迄今已取得进展,但仍存在许多挑战,例如需要开发高效、可重复的封装方法以维持益生菌的生存能力和活性。此外,还需要设计更强大、更具靶向性的递送载体。