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一种用于 3D 人基质干细胞聚集体中非病毒基因传递的微粒方法。

A microparticle approach for non-viral gene delivery within 3D human mesenchymal stromal cell aggregates.

机构信息

Department of Biomedical Engineering, University of Wisconsin-Madison, Madison, WI 53706, USA.

Departments of Biomedical Engineering and Orthopedic Surgery, Case Western Reserve University, Cleveland, OH 44106, USA.

出版信息

Acta Biomater. 2019 Sep 1;95:408-417. doi: 10.1016/j.actbio.2019.04.038. Epub 2019 Apr 18.

Abstract

Three-dimensional (3D) multicellular aggregates, in comparison to two-dimensional monolayer culture, can provide tissue culture models that better recapitulate the abundant cell-cell and cell-matrix interactions found in vivo. In addition, aggregates are potentially useful building blocks for tissue engineering. However, control over the interior aggregate microenvironment is challenging due to inherent barriers for diffusion of biological mediators (e.g. growth factors) throughout the multicellular aggregates. Previous studies have shown that incorporation of biomaterials into multicellular aggregates can support cell survival and control differentiation of stem cell aggregates by delivering morphogens from within the 3D construct. In this study, we developed a highly efficient microparticle-based gene delivery approach to uniformly transfect human mesenchymal stromal cells (hMSC) within multicellular aggregates and cell sheets. We hypothesized that release of plasmid DNA (pDNA) lipoplexes from mineral-coated microparticles (MCMs) within 3D hMSC constructs would improve transfection in comparison to standard free pDNA lipoplex delivery in the media. Our approach increased transfection efficiency 5-fold over delivery of free pDNA lipoplexes in the media and resulted in homogenous distribution of transfected cells throughout the 3D constructs. Additionally, we found that MCMs improved hMSC transfection by specifically increasing macropinocytosis-mediated uptake of pDNA. Finally, we showed up to a three-fold increase of bone morphogenetic protein-2 (BMP-2) expression and enhanced calcium deposition within 3D hMSC constructs following MCM-mediated delivery of a BMP-2 encoding plasmid and culture in osteogenic medium. The technology described here provides a valuable tool for achieving efficient and homogenous transfection of 3D cell constructs and is therefore of particular value in tissue engineering and regenerative medicine applications. STATEMENT OF SIGNIFICANCE: This original research describes a materials-based approach, whereby use of mineral-coated microparticles improves the efficiency of non-viral gene delivery in three-dimensional human mesenchymal stromal cell constructs. Specifically, it demonstrates the use of mineral-coated microparticles to enable highly efficient transfection of human mesenchymal stromal cells in large, 3D culture formats. The manuscript also identifies specific endocytosis pathways that interact with the mineral coating to afford the improved transfection efficiency, as well as demonstrates the utility of this approach toward improving differentiation of large cell constructs. We feel that this manuscript will impact the current understanding and near-term development of materials for non-viral gene delivery in broad tissue engineering and biofabrication applications, and therefore be of interest to a diverse biomaterials audience.

摘要

三维(3D)多细胞聚集体与二维单层培养相比,可以提供更好地模拟体内丰富的细胞-细胞和细胞-基质相互作用的组织培养模型。此外,聚集体是组织工程的潜在有用构建块。然而,由于生物介质(例如生长因子)在整个多细胞聚集体中扩散的固有障碍,对聚集体内部微环境的控制具有挑战性。先前的研究表明,通过从 3D 构建体内部输送形态发生素来将生物材料掺入多细胞聚集体中,可以支持细胞存活并控制干细胞聚集体的分化。在这项研究中,我们开发了一种高效的基于微粒的基因传递方法,以均匀转染多细胞聚集体和细胞片中的人间充质基质细胞(hMSC)。我们假设,与在培养基中递送游离 pDNA 脂质体相比,从 3D hMSC 构建体中的矿物涂层微粒(MCM)释放质粒 DNA(pDNA)脂质体复合物将提高转染效率。我们的方法使转染效率提高了 5 倍,比在培养基中递送游离 pDNA 脂质体复合物更均匀地分布转染细胞整个 3D 构建体。此外,我们发现 MCM 通过特异性增加大胞饮作用介导的 pDNA 摄取来提高 hMSC 的转染效率。最后,我们发现,在用 MCM 介导递送编码骨形态发生蛋白-2(BMP-2)的质粒并在成骨培养基中培养后,3D hMSC 构建体中的 BMP-2 表达增加了 3 倍,钙沉积增加。这里描述的技术为实现 3D 细胞构建体的高效和均匀转染提供了有价值的工具,因此在组织工程和再生医学应用中特别有价值。意义声明:这项原创研究描述了一种基于材料的方法,即使用矿物涂层微粒可提高三维人骨髓间充质基质细胞构建体中非病毒基因传递的效率。具体而言,它证明了使用矿物涂层微粒可在大型 3D 培养体系中高效转染人骨髓间充质基质细胞。该论文还确定了与矿物涂层相互作用以提供更高转染效率的特定内吞途径,并证明了该方法在改善大型细胞构建体分化方面的实用性。我们认为,本文将影响当前对广泛的组织工程和生物制造应用中非病毒基因传递用材料的理解和近期发展,并因此引起广大生物材料受众的关注。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d828/6888862/9aeca2ba0e50/nihms-1058274-f0002.jpg

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A simple protocol for transfecting human mesenchymal stem cells.一种转染人间充质干细胞的简单方案。
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Materials as stem cell regulators.材料作为干细胞调控物。
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