微流体生成的抗低温断裂cncs增强复合材料微胶囊用于增强被封装细胞的低温保存。

IF 4.1 4区 医学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Marlene Davis Ekpo, George Frimpong Boafo, Yanmin Yang, Yimer Seid, Chuanpin Chen, Songwen Tan, Rongrong Wang, Zhen Huang
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引用次数: 0

摘要

免疫分离细胞在推进细胞治疗方面具有很大的前景;然而,它们的长期储存仍然是一个关键的挑战,因为在冷冻保存过程中,冰的形成和细胞和包封基质的机械损伤。在本研究中,利用微流体技术开发了一种抗低温断裂的复合微胶囊,其中海藻酸钠与纤维素纳米晶体(cnc)增强。在低温保存期间,对复合微胶囊的结构、力学、形态、化学和热稳定性进行了评估。此外,以红细胞(rbc)为模型,评估优化后的微胶囊在解冻后提高细胞活力的能力。结果表明,微流体系统可以精确控制微胶囊的大小和均匀性,这对均匀冷冻和解冻至关重要。CNCs增强微胶囊表现出延迟冰形成,改善冰再结晶抑制,以及对冷冻引起的变形的优越保护。此外,复合微胶囊增强了被封装红细胞的解冻后恢复,并使生物相容性冷冻保护剂(海藻糖)的掺入成为可能。本研究展示了一种优化低温保存技术的新方法,利用复合微胶囊的增强特性来减轻低温损伤,提高被包被细胞的功能恢复。这些发现为推进基于微胶囊的细胞疗法和更广泛的生物医学应用提供了一个有希望的策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Microfluidics-Generated Cryo-Fracture Resistant CNCs-Reinforced Composite Microcapsules for Enhanced Cryopreservation of Encapsulated Cells.

Immunoisolated cells hold great promise for advancing cell therapeutics; however, their long-term storage remains a critical challenge due to ice formation and mechanical damage to both cells and the encapsulating matrix during cryopreservation. In this study, a cryo-fracture-resistant composite microcapsule has been developed using microfluidic technology, where sodium alginate was reinforced with cellulose nanocrystals (CNCs). The composite microcapsules were assessed for their ability to provide structural, mechanical, morphological, chemical, and thermal stability during cryopreservation. Additionally, red blood cells (RBCs) were used as a model to evaluate the ability of the optimized microcapsules to improve cell viability post-thaw. Results revealed that the microfluidic system allowed for precise control over microcapsule size and uniformity, which is crucial for even freezing and thawing. CNCs reinforced microcapsules exhibited delayed ice formation, improved ice recrystallization inhibition, and superior protection against freeze-induced deformations. Furthermore, the composite microcapsules enhanced post-thaw recovery of encapsulated RBCs and enabled the incorporation of a biocompatible cryoprotectant (trehalose). This study demonstrates a novel approach to optimizing cryopreservation techniques by leveraging the enhanced properties of composite microcapsules to mitigate cryo-injury and improve the functional recovery of encapsulated cells. These findings present a promising strategy for advancing microencapsulation-based cell therapies and broader biomedical applications.

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来源期刊
Macromolecular bioscience
Macromolecular bioscience 生物-材料科学:生物材料
CiteScore
7.90
自引率
2.20%
发文量
211
审稿时长
1.5 months
期刊介绍: Macromolecular Bioscience is a leading journal at the intersection of polymer and materials sciences with life science and medicine. With an Impact Factor of 2.895 (2018 Journal Impact Factor, Journal Citation Reports (Clarivate Analytics, 2019)), it is currently ranked among the top biomaterials and polymer journals. Macromolecular Bioscience offers an attractive mixture of high-quality Reviews, Feature Articles, Communications, and Full Papers. With average reviewing times below 30 days, publication times of 2.5 months and listing in all major indices, including Medline, Macromolecular Bioscience is the journal of choice for your best contributions at the intersection of polymer and life sciences.
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