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首页> 外文期刊>Tissue engineering, Part A >Cell-Seeded Adhesive Biomaterial for Repair of Annulus Fibrosus Defects in Intervertebral Discs
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Cell-Seeded Adhesive Biomaterial for Repair of Annulus Fibrosus Defects in Intervertebral Discs

机译:用于修复椎间盘中环纤维缺陷的细胞播种胶粘剂生物材料

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摘要

Defects in the annulus fibrosus (AF) of intervertebral discs allow nucleus pulposus tissue to herniate causing painful disability. Microdiscectomy procedures remove herniated tissue fragments, but unrepaired defects remain allowing reherniation or progressive degeneration. Cell therapies show promise to enhance repair, but methods are undeveloped and carriers are required to prevent cell leakage. To address this challenge, this study developed and evaluated genipin-crosslinked fibrin (FibGen) as an adhesive cell carrier optimized for AF repair that can deliver cells, match AF material properties, and have low risk of extrusion during loading. Part 1 determined that feasibility of bovine AF cells encapsulated in high concentration FibGen (F140G6: 140?mg/mL fibrinogen; 6?mg/mL genipin) for 7 weeks could maintain high viability, but had little proliferation or matrix deposition. Part 2 screened tissue mechanics and in situ failure testing of nine FibGen formulations (fibrin: 35–140?mg/mL; genipin: 1–6?mg/mL). F140G6 formulation matched AF shear and compressive properties and significantly improved failure strength in situ. Formulations with reduced genipin also exhibited satisfactory material properties and failure behaviors warranting further biological screening. Part 3 screened AF cells encapsulated in four FibGen formulations for 1 week and found that reduced genipin concentrations increased cell viability and glycosaminoglycan production. F70G1 (70?mg/mL fibrinogen; 1?mg/mL genipin) demonstrated balanced biological and biomechanical performance warranting further testing. We conclude that FibGen has potential to serve as an adhesive cell carrier to repair AF defects with formulations that can be tuned to enhance biomechanical and biological performance; future studies are required to develop strategies to enhance matrix production.
机译:椎间盘环纤维(AF)中的缺陷允许核骨髓组织对引起痛苦残疾的疱疹组织。 Microdiccectomy程序去除突出的组织碎片,但未缺陷缺陷仍然允许reaigniation或渐变性。细胞疗法显示有望增强修复,但方法是未开发的,并且需要载体来防止细胞泄漏。为了解决这一挑战,该研究通过针对AF修复而优化的粘性细胞载体进行了该研究和评估了Genipin交联的纤维蛋白(Fibgen),其可以递送细胞,匹配AF材料性质,并且在装载过程中具有低挤出风险。第1部分确定牛AF细胞的可行性封装在高浓度的纤维(F140G6:140×mg / ml纤维蛋白原; 6×mg / ml Genipin)7周中可以保持高活力,但具有很少的增殖或基质沉积。第2部分筛选组织力学和九种纤维配方的原位衰竭试验(纤维蛋白:35-140×mg / ml; Genipin:1-6?mg / ml)。 F140G6配方匹配AF剪切和压缩性能,原位的故障强度显着提高。具有降低的Genipin的配方也表现出令人满意的材料性能和失效行为,需要进一步的生物筛选。第3部分筛选在四个纤维制剂中包封的AF细胞1周,发现降低的Genipin浓度增加了细胞活力和糖胺聚糖的产生。 F70G1(70毫克/ mL纤维蛋白原; 1?Mg / ml Genipin)证明了平衡的生物和生物力学表现需要进一步的测试。我们得出结论,纤维有潜力用作粘性细胞载体,以修复可调整的配方的AF缺陷,以提高生物力学和生物学性能;未来的研究是制定提升矩阵生产的策略。

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