Department of Bioengineering, University of Pennsylvania, Philadelphia, PA, 19104, USA.
BioFrontiers Institute, University of Colorado Boulder, Boulder, CO, 80303, USA.
Adv Mater. 2024 Apr;36(14):e2312226. doi: 10.1002/adma.202312226. Epub 2024 Jan 4.
Many cell types require direct cell-cell interactions for differentiation and function; yet, this can be challenging to incorporate into 3-dimensional (3D) structures for the engineering of tissues. Here, a new approach is introduced that combines aggregates of cells (spheroids) with similarly-sized hydrogel particles (microgels) to form granular composites that are injectable, undergo interparticle crosslinking via light for initial stabilization, permit cell-cell contacts for cell signaling, and allow spheroid fusion and growth. One area where this is important is in cartilage tissue engineering, as cell-cell contacts are crucial to chondrogenesis and are missing in many tissue engineering approaches. To address this, granular composites are developed from adult porcine mesenchymal stromal cell (MSC) spheroids and hyaluronic acid microgels and simulations and experimental analyses are used to establish the importance of initial MSC spheroid to microgel volume ratios to balance mechanical support with tissue growth. Long-term chondrogenic cultures of granular composites produce engineered cartilage tissue with extensive matrix deposition and mechanical properties within the range of cartilage, as well as integration with native tissue. Altogether, a new strategy of injectable granular composites is developed that leverages the benefits of cell-cell interactions through spheroids with the mechanical stabilization afforded with engineered hydrogels.
许多细胞类型需要直接的细胞-细胞相互作用才能分化和发挥功能;然而,将这一点纳入 3 维(3D)结构以用于组织工程学却颇具挑战。在此,引入了一种新方法,即将细胞聚集体(球体)与同样大小的水凝胶颗粒(微球)结合,形成可注射的颗粒复合材料,通过光进行颗粒间交联以实现初始稳定,允许细胞-细胞接触以进行细胞信号传递,并允许球体融合和生长。在软骨组织工程中,这一点非常重要,因为细胞-细胞接触对于软骨生成至关重要,而许多组织工程方法都缺乏这一点。为了解决这个问题,从成年猪间充质基质细胞(MSC)球体和成纤维细胞细胞外基质和透明质酸微球开发了颗粒复合材料,并通过模拟和实验分析来确定初始 MSC 球体与微球体积比的重要性,以平衡机械支撑与组织生长。颗粒复合材料的长期软骨生成培养产生了具有广泛基质沉积和机械性能的工程化软骨组织,并且与天然组织整合。总之,开发了一种新的可注射颗粒复合材料策略,该策略通过球体利用细胞-细胞相互作用的优势,并通过工程水凝胶提供机械稳定性。