Department of Biomedical Engineering, University of California, Davis, One Shields Avenue, Davis, CA 95616, USA.
Biochem Biophys Res Commun. 2013 Mar 29;433(1):133-8. doi: 10.1016/j.bbrc.2013.02.048. Epub 2013 Feb 28.
Knee meniscus fibrocartilage is frequently injured, resulting in approximately 1 million procedures annually in the US and Europe. Its near-avascularity contributes heavily to its inability to heal, and places it as a prime candidate for replacement through regenerative medicine. Here, we describe a novel approach to increase extracellular matrix organization, rather than content, in order to augment the mechanical properties of engineered tissue. To synthesize fibrocartilage, we employ a self-assembling process, which is free of exogenous scaffolds and relies on cell-to-cell interactions to form all-biologic constructs. When treated with the signaling phospholipid lysophosphatidic acid (LPA), tissue constructs displayed increased tensile properties and collagen organization, while total collagen content remained unchanged. LPA-treated constructs exhibited greater DNA content, indicative that the molecule exerted a signaling effect. Furthermore, LPA-treated cells displayed significant cytoskeletal reorganization. We conclude that LPA induced cytoskeletal reorganization and cell-matrix traction, which resulted in matrix reorganization and increased tensile properties. This study emphasizes the potential of non-traditional stimuli, such as signaling phospholipids, for use in tissue development studies. The extension of these results to other collagen-rich tissues represents a promising avenue for future exploration.
膝关节半月板纤维软骨经常受伤,导致美国和欧洲每年约有 100 万例手术。其近乎无血管的特性极大地影响了其愈合能力,使其成为通过再生医学进行替代的主要候选者。在这里,我们描述了一种增加细胞外基质组织,而不是含量的新方法,以增强工程组织的机械性能。为了合成纤维软骨,我们采用了一种自组装的方法,该方法不使用外源性支架,而是依赖于细胞间的相互作用来形成全生物构建体。在用信号磷脂酰肌醇(LPA)处理后,组织构建体显示出拉伸性能和胶原组织增加,而总胶原含量保持不变。用 LPA 处理的构建体显示出更高的 DNA 含量,表明该分子发挥了信号作用。此外,用 LPA 处理的细胞显示出明显的细胞骨架重排。我们得出结论,LPA 诱导了细胞骨架重排和细胞-基质牵引力,从而导致了基质重排和拉伸性能的提高。这项研究强调了非传统刺激物(如信号磷脂)在组织发育研究中的潜在应用。将这些结果扩展到其他富含胶原蛋白的组织代表了未来探索的一个有前途的途径。