Department of Tissue Engineering, China Medical University, Shenyang, China.
Center of Implant Dentistry, School of Stomatology, China Medical University, Shenyang, China.
Acta Biomater. 2021 Oct 15;134:160-176. doi: 10.1016/j.actbio.2021.07.038. Epub 2021 Jul 23.
Adhesion often occurs after tendon injury, and results in sliding disorder and movement limitation with no ideal solution for it in clinic. In this study, an anti-adhesion membrane, i.e., decellularized tendon matrix (DTM) for tendon is successfully prepared by an optimized tendon decellularization method from homologous extracellular matrix. Microsection technology has been used to optimize the method of decellularization in order to better preserve the bioactive components in tissues and reduce the chemical reagent residues on the premise of effective decellularization with relatively shorter time and less reagents for decellularization. The physic-chemical properties and biological functions of DTM are evaluated, and high-throughput and high-precision tandem mass tags (TMT) labeling proteomics technology is used to analyze protein components of DTM, which may provide the scientific support for application of the innovative product. In vitro biosafety tests show that DTM not only is non-toxic but also promote cell proliferation. Subcutaneous implantation test confirms that DTM is completely degraded after 12 weeks and there is no obvious inflammatory reaction. The results of Achilles tendon repair in rabbits show that DTM can not only prevent tendon adhesion but also improve the quality of tendon repair, which demonstrates its tremendous application potential. STATEMENT OF SIGNIFICANCE: There is no ideal solution for adhesion after tendon injury. In this study, a dense tendon anti-adhesion membrane (DTM) was successfully prepared from homologous extracellular matrix (ECM). This DTM could effectively retain bioactive ingredients, and prevent adhesion as well as improve the quality of tendon repair in vivo. An optimized decellularization method was used which could effectively decellularize tendon in a short time, better preserve bioactive components, and reduce reagent residues. For the first time, high-throughput and high-precision tandem mass tags (TMT) labeling proteomics technology was used to qualitatively and quantitatively analyze the protein composition of fresh tendon, acellular tendon and DTM, which provided not only scientific support for the application of DTM, but also comprehensive and accurate data support for related research of bovine tendons and decellularization.
粘连通常发生在肌腱损伤后,导致滑动障碍和运动受限,临床上尚无理想的解决方案。在这项研究中,通过优化的同源细胞外基质去细胞化方法,成功制备了一种抗粘连膜,即去细胞化肌腱基质(DTM)用于肌腱。为了更好地保留组织中的生物活性成分,并在有效去细胞化的前提下减少化学试剂残留,使用微切片技术对去细胞化方法进行了优化,从而使去细胞化时间相对较短,使用的去细胞化试剂较少。评估了 DTM 的理化性质和生物学功能,并使用高通量和高精度串联质量标签(TMT)标记蛋白质组学技术分析 DTM 的蛋白质成分,这可能为创新产品的应用提供科学支持。体外生物安全测试表明,DTM 不仅无毒,而且还能促进细胞增殖。皮下植入试验证实,DTM 在 12 周后完全降解,没有明显的炎症反应。兔跟腱修复实验结果表明,DTM 不仅可以防止肌腱粘连,而且可以改善肌腱修复质量,这证明了其巨大的应用潜力。
肌腱损伤后粘连尚无理想的解决方案。在这项研究中,成功地从同源细胞外基质(ECM)制备了致密的肌腱抗粘连膜(DTM)。这种 DTM 可以有效地保留生物活性成分,在体内有效防止粘连并改善肌腱修复质量。使用优化的去细胞化方法可以在短时间内有效地去细胞化肌腱,更好地保留生物活性成分,减少试剂残留。首次使用高通量和高精度串联质量标签(TMT)标记蛋白质组学技术对新鲜肌腱、去细胞肌腱和 DTM 的蛋白质组成进行定性和定量分析,不仅为 DTM 的应用提供了科学支持,而且为牛肌腱和去细胞化的相关研究提供了全面、准确的数据支持。