Center for Biomedicine, Charité-Universitätsmedizin, 12203 Berlin, Germany.
Berlin Institute of Health (BIH) Center for Regenerative Therapies, Charité-Universitätsmedizin, 13353 Berlin, Germany.
Int J Mol Sci. 2022 Sep 29;23(19):11473. doi: 10.3390/ijms231911473.
Quickly developing precision medicine and patient-oriented treatment strategies urgently require novel technological solutions. The randomly cell-populated scaffolds usually used for tissue engineering often fail to mimic the highly anisotropic characteristics of native tissue. In this work, an ultrasound standing-wave-based tissue engineering acoustophoretic (TEA) set-up was developed to organize murine mesenchymal stromal cells (mMSCs) in an in situ polymerizing 3-D fibrin hydrogel. The resultant constructs, consisting of 17 cell layers spaced at 300 µm, were obtained by continuous wave ultrasound applied at a 2.5 MHz frequency. The patterned mMSCs preserved the structured behavior within 10 days of culturing in osteogenic conditions. Cell viability was moderately increased 1 day after the patterning; it subdued and evened out, with the cells randomly encapsulated in hydrogels, within 21 days of culturing. Cells in the structured hydrogels exhibited enhanced expression of certain osteogenic markers, i.e., Runt-related transcription factor 2 (RUNX2), osterix (Osx) transcription factor, collagen-1 alpha1 (COL1A1), osteopontin (OPN), osteocalcin (OCN), and osteonectin (ON), as well as of certain cell-cycle-progression-associated genes, i.e., Cyclin D1, cysteine-rich angiogenic inducer 61 (CYR61), and anillin (ANLN), when cultured with osteogenic supplements and, for ANLN, also in the expansion media. Additionally, OPN expression was also augmented on day 5 in the patterned gels cultured without the osteoinductive media, suggesting the pro-osteogenic influence of the patterned cell organization. The TEA set-up proposes a novel method for non-invasively organizing cells in a 3-D environment, potentially enhancing the regenerative properties of the designed anisotropic constructs for bone healing.
快速发展的精准医学和以患者为中心的治疗策略迫切需要新的技术解决方案。用于组织工程的随机细胞填充支架通常无法模拟天然组织的各向异性特征。在这项工作中,开发了一种基于超声驻波的组织工程声悬浮(TEA)装置,用于在原位聚合的 3D 纤维蛋白水凝胶中组织鼠间充质基质细胞(mMSCs)。通过施加 2.5MHz 频率的连续波超声,获得了由 17 层细胞组成的构建体,这些细胞层间隔 300μm。在成骨条件下培养 10 天后,图案化的 mMSCs 保持了结构行为。细胞活力在图案化后 1 天适度增加;在培养 21 天后,它被抑制并均匀化,细胞随机包裹在水凝胶中。在结构水凝胶中的细胞表现出某些成骨标志物的增强表达,即 Runt 相关转录因子 2(RUNX2)、成骨特异性转录因子(Osx)、胶原蛋白-1 alpha1(COL1A1)、骨桥蛋白(OPN)、骨钙素(OCN)和骨粘连蛋白(ON),以及某些细胞周期进展相关基因,即细胞周期蛋白 D1(Cyclin D1)、富含半胱氨酸的血管生成诱导因子 61(CYR61)和肌动蛋白(ANLN),当用成骨补充剂培养时,以及在扩展培养基中,对于 ANLN 也是如此。此外,在没有成骨诱导介质的图案化凝胶中培养时,OPN 表达也在第 5 天增加,这表明图案化细胞组织增强了成骨作用。TEA 装置提出了一种在 3D 环境中组织细胞的新方法,可能会增强设计的各向异性构建体用于骨愈合的再生特性。