用于干细胞分化的释药微球。

Current Protocols Pub Date : 2021-12-01 DOI:10.1002/cpz1.331
Ruchi Sharma, Claire Benwood, Stephanie M Willerth
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引用次数: 4

摘要

干细胞分化为特化细胞的能力使它们成为治疗应用的宝贵工具。3D生物打印是增材制造的一个子集,它使用由细胞和生物材料组成的生物墨水来创建活组织。利用小分子和蛋白质等生物活性因子可以促进干细胞分化为组织再生所需的细胞表型。小分子可以加速组织工程中的再生过程,在生物环境中保持生物活性,并将与此过程相关的成本降至最低。此外,它们可以被封装在称为微球的专门药物输送装置中,以控制释放。微球是一种小的(1-1000 μm)球形颗粒,通常由可生物降解和生物相容性聚合物制成,可以装载药物和其他生物活性成分。然后,它们可以被整合到含有干细胞的生物墨水中,用于形成生物打印组织,在那里它们将释放被封装的药物,并促进干细胞分化为所需的成熟细胞类型。微球可广泛用于封装各种治疗药物,包括亲水和疏水小分子药物、DNA和蛋白质。包裹分子的释放是通过聚合物基体的降解和侵蚀发生的。聚-ε-己内酯是一种很有前途的可生物降解聚合物,由于其生物相容性和生物降解动力学,常用于控制药物递送。附加协议描述了微球的负载和大小的特征,以及将微球掺入用于3D生物打印的基于纤维蛋白的生物链接中。©2021 Wiley期刊有限责任公司基本方案1:制备药物释放PCL微球支持方案1:制备微球用于HPLC测定包封效率支持方案2:制备微球用于扫描电镜分析基本方案2:将微球纳入基于纤维蛋白的生物链接。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Drug-releasing Microspheres for Stem Cell Differentiation.

The ability of stem cells to differentiate into specialized cells make them a valuable tool for therapeutic applications. 3D bioprinting, a subset of additive manufacturing, uses bioinks composed of cells and biomaterials to create living tissues. The use of bioactive factors like small molecules and proteins can promote stem cell differentiation into the desired cell phenotypes for tissue regeneration. Small molecules can accelerate the process of regeneration in tissue engineering, maintain bioactivity in a biological environment, and minimize the costs associated with this process. Additionally, they can be encapsulated in specialized drug-delivery devices called microspheres for controlled release. Microspheres are small (1-1000 μm) spherical particles usually made from biodegradable and biocompatible polymers that can be loaded with drugs and other bioactive components. They can then be integrated into stem-cell-laden bioinks used to form bioprinted tissues, where they will release the encapsulated drug and promote differentiation of stem cells into the desired mature cell type. Microspheres can be widely used to encapsulate a broad range of therapeutic agents, including hydrophilic and hydrophobic small molecule drugs, DNA, and proteins. The release of encapsulated molecules occurs through degradation and erosion of the polymer matrix. This article provides detailed protocols for fabricating and sterilizing drug-releasing microspheres made from poly-ε-caprolactone, a promising biodegradable polymer often used for controlled drug delivery due to its biocompatibility and biodegradation kinetics. Additional protocols describe characterization of the loading and size of microspheres as well as incorporation of microspheres into a fibrin-based bioink for 3D bioprinting. © 2021 Wiley Periodicals LLC. Basic Protocol 1: Fabrication of drug-releasing PCL microspheres Support Protocol 1: Preparation of microspheres for determination of encapsulation efficiency by HPLC Support Protocol 2: Preparation of microspheres for SEM analysis Basic Protocol 2: Incorporation of microspheres into fibrin-based bioink.

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