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设计和表征核壳型 mPEG-PLGA 复合微球用于细胞-支架构建体的开发。

Design and characterization of core-shell mPEG-PLGA composite microparticles for development of cell-scaffold constructs.

机构信息

Department of Pharmacy, Faculty of Health and Medical Sciences, University of Copenhagen, Universitetsparken 2, DK-2100 Copenhagen, Denmark.

出版信息

Eur J Pharm Biopharm. 2013 Sep;85(1):87-98. doi: 10.1016/j.ejpb.2013.03.027.

Abstract

Appropriate scaffolds capable of providing suitable biological and structural guidance are of great importance to generate cell-scaffold constructs for cell-based tissue engineering. The aim of the present study was to develop composite microparticles with a structure to provide functionality as a combined drug delivery/scaffold system. Composite microparticles were produced by incorporating either alginate/dermatan sulfate (Alg/DS) or alginate/chitosan/dermatan sulfate (Alg/CS/DS) particles in mPEG-PLGA microparticles using coaxial ultrasonic atomization. The encapsulation and distribution of Alg/DS or Alg/CS/DS particles in the mPEG-PLGA microparticles were significantly dependent on the operating conditions, including the flow rate ratio (Qout/Qin) and the viscosity of the polymer solutions (Vout, Vin) between the outer and the inner feeding channels. The core-shell composite microparticles containing the Alg/DS particles or the Alg/CS/DS particles displayed 40% and 65% DS release in 10 days, respectively, as compared to the DS directly loaded microparticles showing 90% DS release during the same time interval. The release profiles of DS correlate with the cell proliferation of fibroblasts, i.e. more sustainable cell growth was induced by the DS released from the core-shell composite microparticles comprising Alg/CS/DS particles. After seeding fibroblasts onto the composite microparticles, excellent cell adhesion was observed, and a successful assembly of the cell-scaffold constructs was induced within 7 days. Therefore, the present study demonstrates a novel strategy for fabrication of core-shell composite microparticles comprising additional particulate drug carriers in the core, which provides controlled delivery of DS and favorable cell biocompatibility; an approach to potentially achieve cell-based tissue regeneration.

摘要

合适的支架能够提供合适的生物和结构指导,对于生成基于细胞的组织工程的细胞-支架构建体非常重要。本研究的目的是开发具有结构功能的复合微球,作为一种联合药物输送/支架系统。通过同轴超声雾化将藻酸盐/硫酸皮肤素(Alg/DS)或藻酸盐/壳聚糖/硫酸皮肤素(Alg/CS/DS)颗粒掺入 mPEG-PLGA 微球中,制备复合微球。Alg/DS 或 Alg/CS/DS 颗粒在 mPEG-PLGA 微球中的包封和分布显着依赖于操作条件,包括外腔和内腔之间的流速比(Qout/Qin)和聚合物溶液的粘度(Vout,Vin)。含有 Alg/DS 颗粒或 Alg/CS/DS 颗粒的核壳复合微球在 10 天内分别释放了 40%和 65%的 DS,而相同时间间隔内直接负载 DS 的微球释放了 90%的 DS。DS 的释放曲线与成纤维细胞的增殖相关,即 Alg/CS/DS 颗粒组成的核壳复合微球中释放的 DS 诱导更可持续的细胞生长。将成纤维细胞接种到复合微球上后,观察到良好的细胞黏附性,并在 7 天内成功诱导了细胞-支架构建体的组装。因此,本研究展示了一种在核心中包含额外颗粒药物载体的核壳复合微球的新型制造策略,该策略提供了 DS 的控制释放和良好的细胞生物相容性;这是一种潜在的实现基于细胞的组织再生的方法。

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