Tissue Bioengineering Laboratory, Department of Biological Engineering, College of Veterinary Medicine, Mississippi State University, Mississippi State, Mississippi 39762, USA.
Langmuir. 2013 Sep 3;29(35):11109-17. doi: 10.1021/la401702w. Epub 2013 Aug 20.
Recently, we developed an optimal decellularization protocol to generate 3D porcine myocardial scaffolds, which preserve the natural extracellular matrix structure, mechanical anisotropy, and vasculature templates and also show good cell recellularization and differentiation potential. In this study, a multistimulation bioreactor was built to provide coordinated mechanical and electrical stimulation for facilitating stem cell differentiation and cardiac construct development. The acellular myocardial scaffolds were seeded with mesenchymal stem cells (10(6) cells/mL) by needle injection and subjected to 5-azacytidine treatment (3 μmol/L, 24 h) and various bioreactor conditioning protocols. We found that after 2 days of culturing with mechanical (20% strain) and electrical stimulation (5 V, 1 Hz), high cell density and good cell viability were observed in the reseeded scaffold. Immunofluorescence staining demonstrated that the differentiated cells showed a cardiomyocyte-like phenotype by expressing sarcomeric α-actinin, myosin heavy chain, cardiac troponin T, connexin-43, and N-cadherin. Biaxial mechanical testing demonstrated that positive tissue remodeling took place after 2 days of bioreactor conditioning (20% strain + 5 V, 1 Hz); passive mechanical properties of the 2 day and 4 day tissue constructs were comparable to those of the tissue constructs produced by stirring reseeding followed by 2 weeks of static culturing, implying the effectiveness and efficiency of the coordinated simulations in promoting tissue remodeling. In short, the synergistic stimulations might be beneficial not only for the quality of cardiac construct development but also for patients by reducing the waiting time in future clinical scenarios.
最近,我们开发了一种优化的去细胞化方案,用于生成 3D 猪心肌支架,该支架保留了天然细胞外基质结构、力学各向异性和脉管模板,并且具有良好的细胞再细胞化和分化潜力。在这项研究中,构建了一个多刺激生物反应器,为促进干细胞分化和心脏构建体的发育提供协调的机械和电刺激。通过针注射将脱细胞心肌支架接种间充质干细胞(10(6)个细胞/mL),并进行 5-氮杂胞苷处理(3 μmol/L,24 h)和各种生物反应器调节方案。我们发现,在用机械(20%应变)和电刺激(5 V,1 Hz)培养 2 天后,再接种的支架中观察到高细胞密度和良好的细胞活力。免疫荧光染色表明,分化细胞通过表达肌节α-肌动蛋白、肌球蛋白重链、心肌肌钙蛋白 T、连接蛋白 43 和 N-钙黏蛋白表现出心肌细胞样表型。双轴力学测试表明,在生物反应器调节 2 天后(20%应变+5 V,1 Hz)发生了阳性组织重塑;2 天和 4 天组织构建体的被动力学性能与搅拌再接种后 2 周静态培养产生的组织构建体相当,这意味着协调模拟在促进组织重塑方面的有效性和效率。总之,协同刺激不仅有利于心脏构建体的质量,而且通过减少未来临床情况下的等待时间,对患者也有益。