Department of Bioengineering and iBB - Institute of Bioengineering and Biosciences, Instituto Superior Técnico, Universidade de Lisboa, Av. Rovisco Pais, Lisboa, 1049-001, Portugal.
Department of Chemistry and Chemical Biology, Biological Sciences, Biomedical Engineering and Chemical and Biological Engineering, Center for Biotechnology and Interdisciplinary Studies, Rensselaer Polytechnic Institute, Troy, NY, 12180-3590, USA.
Biotechnol J. 2020 Feb;15(2):e1900078. doi: 10.1002/biot.201900078. Epub 2019 Oct 21.
Novel bioengineering strategies for the ex vivo fabrication of native-like tissue-engineered cartilage are crucial for the translation of these approaches to clinically manage highly prevalent and debilitating joint diseases. Bioreactors that provide different biophysical stimuli have been used in tissue engineering approaches aimed at enhancing the quality of the cartilage tissue generated. However, such systems are often highly complex, expensive, and not very versatile. In the current study, a novel, cost-effective, and customizable perfusion bioreactor totally fabricated by additive manufacturing (AM) is proposed for the study of the effect of fluid flow on the chondrogenic differentiation of human bone-marrow mesenchymal stem/stromal cells (hBMSCs) in 3D porous poly(ɛ-caprolactone) (PCL) scaffolds. hBMSCs are first seeded and grown on PCL scaffolds and hBMSC-PCL constructs are then transferred to 3D-extruded bioreactors for continuous perfusion culture under chondrogenic inductive conditions. Perfused constructs show similar cell metabolic activity and significantly higher sulfated glycosaminoglycan production (≈1.8-fold) in comparison to their non-perfused counterparts. Importantly, perfusion bioreactor culture significantly promoted the expression of chondrogenic marker genes while downregulating hypertrophy. This work highlights the potential of customizable AM platforms for the development of novel personalized repair strategies and more reliable in vitro models with a wide range of applications.
为了将这些方法转化为临床上管理高度流行和使人衰弱的关节疾病的方法,体外制造类似天然组织的工程化软骨的新型生物工程策略至关重要。用于组织工程方法的生物反应器提供了不同的生物物理刺激,旨在提高生成的软骨组织的质量。然而,此类系统通常非常复杂、昂贵且不太灵活。在当前的研究中,提出了一种新颖、具有成本效益且可定制的灌注生物反应器,该生物反应器完全通过增材制造 (AM) 制造,用于研究流体流动对人骨髓间充质干细胞/基质细胞 (hBMSCs) 在 3D 多孔聚己内酯 (PCL) 支架中的软骨分化的影响。hBMSCs 首先在 PCL 支架上接种和生长,然后将 hBMSC-PCL 构建体转移到 3D 挤出式生物反应器中,在软骨诱导条件下进行连续灌注培养。与未灌注的对照相比,灌注构建体显示出相似的细胞代谢活性和显著更高的硫酸化糖胺聚糖产生(约 1.8 倍)。重要的是,灌注生物反应器培养显著促进了软骨形成标记基因的表达,同时下调了肥大。这项工作强调了可定制的 AM 平台在开发新型个性化修复策略和具有广泛应用的更可靠的体外模型方面的潜力。