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动态微工厂共包封成骨细胞和脂肪来源的基质细胞用于骨单位的生物制造。

Dynamic microfactories co-encapsulating osteoblastic and adipose-derived stromal cells for the biofabrication of bone units.

机构信息

CICECO, Department of Chemistry, University of Aveiro, Campus Universitário de Santiago, 3810-193 Aveiro, Portugal.

出版信息

Biofabrication. 2019 Oct 21;12(1):015005. doi: 10.1088/1758-5090/ab3e16.

Abstract

Cells with differentiation potential into mesodermal types are the focus of emerging bone tissue engineering (TE) strategies as an alternative autologous source. When the source of cells is extremely limited or not readily accessible, such as in severe injuries, a tissue biopsy may not yield the required number of viable cells. In line, adipose-derived stromal cells (ASCs) quickly became attractive for bone TE, since they can be easily and repeatably harvested using minimally invasive techniques with low morbidity. Inspired by the multiphenotypic cellular environment of bone, we propose the co-encapsulation of ASCs and osteoblasts (OBs) in self-regulated liquefied and multilayered microcapsules. We explore the unique architecture of such hybrid units to provide a dynamic environment using a simple culture in spinner flasks. Results show that microtissues were successfully obtained inside the proposed microcapsules with an appropriate diffusion of essential molecules for cell survival and signaling. Remarkably, microcapsules cultured in the absence of supplemental osteogenic differentiation factors presented osteopontin immunofluorescence, evidencing that the combined effect of the dynamic environment, and the paracrine signaling between ASCs and OBs may prompt the development of bone-like microtissues. Furthermore, microcapsules cultured under dynamic environment presented an enhanced mineralized matrix and a more organized extracellular matrix ultrastructure compared to static cultures used as control. Altogether, data in this study unveil an effective engineered bioencapsulation strategy for the in vitro production of bone-like microtissues in a more realistic and cost-effective manner. Accordingly, we intend to use the proposed system as hybrid devices implantable by minimally invasive procedures for bone TE applications.

摘要

具有向中胚层类型分化潜力的细胞是新兴骨组织工程 (TE) 策略的重点,因为它们是一种替代自体来源的方法。当细胞来源极其有限或不易获得时,例如在严重损伤的情况下,组织活检可能无法获得所需数量的有活力的细胞。因此,脂肪来源的基质细胞 (ASCs) 很快成为骨 TE 的热门选择,因为它们可以使用微创技术轻松且可重复地收获,并且具有低发病率。受骨多细胞环境的启发,我们提出将 ASC 和成骨细胞 (OB) 共包封在自调节液化和多层微胶囊中。我们探索了这种混合单元的独特结构,以使用简单的旋转瓶培养提供动态环境。结果表明,在所提出的微胶囊内成功获得了微组织,并且对于细胞存活和信号传递至关重要的分子具有适当的扩散。值得注意的是,在没有补充成骨分化因子的情况下培养的微胶囊呈现出骨桥蛋白免疫荧光,这表明动态环境和 ASC 和 OB 之间的旁分泌信号的共同作用可能促使骨样微组织的发展。此外,与用作对照的静态培养相比,在动态环境中培养的微胶囊表现出增强的矿化基质和更有组织的细胞外基质超微结构。总的来说,本研究中的数据揭示了一种有效的工程生物封装策略,可更真实、更具成本效益地体外生产骨样微组织。因此,我们打算将所提出的系统用作可通过微创程序植入的混合装置,用于骨 TE 应用。

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