首页> 外文期刊>Biomaterials >Cartilage regeneration with highly-elastic three-dimensional scaffolds prepared from biodegradable poly(L-lactide-co-epsilon-caprolactone).
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Cartilage regeneration with highly-elastic three-dimensional scaffolds prepared from biodegradable poly(L-lactide-co-epsilon-caprolactone).

机译:用可生物降解的聚(L-丙交酯-ε-己内酯)制备的高弹性三维支架进行软骨再生。

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Compressive mechanical stimuli are crucial in regenerating cartilage with tissue engineering, which creates a need for scaffolds that can maintain their mechanical integrity while delivering mechanical signals to adherent cells during strain applications. With these goals in mind, the aim of this study was to develop a mechano-active scaffold that facilitated effective cartilaginous tissue formation under dynamic physiological environments. Using a gel-pressing method, we fabricated a biodegradable and highly-elastic scaffold from poly(L-lactide-co-epsilon-caprolactone) (PLCL; 5:5), with 85% porosity and a 300-500-microm pore size, and we compared it to control scaffolds made of rigid polylactide (PLA) or poly(lactide-co-glycolide) (PLGA). After tensile mechanical tests and recovery tests confirmed the elasticity of the PLCL scaffolds, we seeded them with rabbit chondrocytes, cultured them in vitro, and subcutaneously implanted them into nude mice for up to eight weeks. The PLCL scaffolds possessed a completely rubber-like elasticity, were easily twisted and bent, and exhibited an almost complete (over 97%) recovery from applied strain (up to 500%); the control PLA scaffolds showed little recovery. In vitro and in vivo accumulations of extracellular matrix on the cell-PLCL constructs demonstrated that they could not only sustain but also significantly enhance chondrogenic differentiation. Moreover, the mechanical stimulation of the dynamic in vivo environment promoted deposition of the chondral extracellular matrix onto the PLCL. In contrast, on the PLA scaffolds, most of the chondrocytes had de-differentiated and formed fibrous tissues. In a rabbit defect model, the groups treated with PLCL scaffolds exhibited significantly enhanced cartilage regeneration compared to groups harboring an empty control or PLGA scaffolds. These results indicated that the mechano-active PLCL scaffolds effectively delivered mechanical signals associated with biological environments to adherent chondrocytes, suggesting that these elastic PLCL scaffolds could successfully be used for cartilage regeneration.
机译:压缩性机械刺激对于通过组织工程再生软骨至关重要,这需要一种能够保持其机械完整性同时在施加应变过程中向粘附细胞传递机械信号的支架。考虑到这些目标,本研究的目的是开发一种机械活性支架,该支架可在动态生理环境下促进有效的软骨组织形成。使用凝胶加压法,我们从聚(L-丙交酯-ε-己内酯)(PLCL; 5:5)制备了可生物降解的高弹性支架,孔隙率为85%,孔径为300-500微米,我们将其与由刚性聚丙交酯(PLA)或聚丙交酯-共-乙交酯(PLGA)制成的对照支架进行了比较。在拉伸机械测试和恢复测试确认PLCL支架的弹性后,我们将它们植入兔软骨细胞,进行体外培养,并将其皮下植入裸鼠长达八周。 PLCL支架具有完全像橡胶的弹性,易于扭曲和弯曲,并且从施加的应变(高达500%)恢复到几乎完全(超过97%)。对照的PLA支架几乎没有恢复。细胞-PLCL构建体上细胞外基质的体外和体内积累表明,它们不仅可以维持而且可以显着增强软骨形成分化。此外,动态体内环境的机械刺激促进了软骨细胞外基质沉积到PLCL上。相反,在PLA支架上,大多数软骨细胞已去分化并形成了纤维组织。在兔缺损模型中,用PLCL支架治疗的组与携带空对照或PLGA支架的组相比,软骨再生显着增强。这些结果表明,机械活性PLCL支架有效地将与生物环境相关的机械信号传递到粘附的软骨细胞,表明这些弹性PLCL支架可以成功地用于软骨再生。

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