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通过内部凝胶化一步乳化法将人骨髓间充质干细胞包裹于小海藻酸钠珠粒中:在退变椎间盘模型中的体外和体内评估

Encapsulation of Human-Bone-Marrow-Derived Mesenchymal Stem Cells in Small Alginate Beads Using One-Step Emulsification by Internal Gelation: In Vitro, and In Vivo Evaluation in Degenerate Intervertebral Disc Model.

作者信息

Sivan Sarit S, Bonstein Iris, Marmor Yariv N, Pelled Gadi, Gazit Zulma, Amit Michal

机构信息

Department of Biotechnology Engineering, Braude College of Engineering, P.O. Box 78, Karmiel 2161002, Israel.

Department of Industrial Engineering and Management, Braude College of Engineering, P.O. Box 78, Karmiel 2161002, Israel.

出版信息

Pharmaceutics. 2022 May 31;14(6):1179. doi: 10.3390/pharmaceutics14061179.

Abstract

Cell microencapsulation in gel beads contributes to many biomedical processes and pharmaceutical applications. Small beads (<300 µm) offer distinct advantages, mainly due to improved mass transfer and mechanical strength. Here, we describe, for the first time, the encapsulation of human-bone-marrow-derived mesenchymal stem cells (hBM-MSCs) in small-sized microspheres, using one-step emulsification by internal gelation. Small (127−257 µm) high-mannuronic-alginate microspheres were prepared at high agitation rates (800−1000 rpm), enabling control over the bead size and shape. The average viability of encapsulated hBM-MSCs after 2 weeks was 81 ± 4.3% for the higher agitation rates. hBM-MSC-loaded microspheres seeded within a glycosaminoglycan (GAG) analogue, which was previously proposed as a mechanically equivalent implant for degenerate discs, kept their viability, sphericity, and integrity for at least 6 weeks. A preliminary in vivo study of hBM-MSC-loaded microspheres implanted (via a GAG-analogue hydrogel) in a rat injured intervertebral disc model demonstrated long-lasting viability and biocompatibility for at least 8 weeks post-implantation. The proposed method offers an effective and reproducible way to maintain long-lasting viability in vitro and in vivo. This approach not only utilizes the benefits of a simple, mild, and scalable method, but also allows for the easy control of the bead size and shape by the agitation rate, which, overall, makes it a very attractive platform for regenerative-medicine applications.

摘要

凝胶珠中的细胞微囊化有助于许多生物医学过程和制药应用。小珠子(<300 µm)具有明显优势,主要得益于改善的传质和机械强度。在此,我们首次描述了使用内部凝胶化一步乳化法将人骨髓间充质干细胞(hBM-MSCs)封装在小尺寸微球中。在高搅拌速率(800 - 1000 rpm)下制备了小尺寸(127 - 257 µm)的高甘露糖醛酸海藻酸盐微球,能够控制珠子的大小和形状。对于较高搅拌速率,封装的hBM-MSCs在2周后的平均活力为81±4.3%。接种在糖胺聚糖(GAG)类似物中的负载hBM-MSC的微球,该类似物先前被提议作为退变椎间盘的机械等效植入物,至少在6周内保持其活力、球形度和完整性。一项对通过GAG类似物水凝胶植入大鼠损伤椎间盘模型中的负载hBM-MSC的微球进行的初步体内研究表明,植入后至少8周具有持久的活力和生物相容性。所提出的方法提供了一种在体外和体内维持持久活力的有效且可重复的方法。这种方法不仅利用了简单、温和且可扩展方法的优点,还允许通过搅拌速率轻松控制珠子的大小和形状,总体而言,使其成为再生医学应用中一个非常有吸引力的平台。

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