Department of Biologic and Materials Sciences, 1011 North University Ave., Room 2211, University of Michigan, Ann Arbor, Michigan 48109-1078, USA.
Nat Mater. 2011 May;10(5):398-406. doi: 10.1038/nmat2999. Epub 2011 Apr 17.
To repair complexly shaped tissue defects, an injectable cell carrier is desirable to achieve an accurate fit and to minimize surgical intervention. However, the injectable carriers available at present have limitations, and are not used clinically for cartilage regeneration. Here, we report nanofibrous hollow microspheres self-assembled from star-shaped biodegradable polymers as an injectable cell carrier. The nanofibrous hollow microspheres, integrating the extracellular-matrix-mimicking architecture with a highly porous injectable form, were shown to efficiently accommodate cells and enhance cartilage regeneration, compared with control microspheres. The nanofibrous hollow microspheres also supported a significantly larger amount of, and higher-quality, cartilage regeneration than the chondrocytes-alone group in an ectopic implantation model. In a critical-size rabbit osteochondral defect-repair model, the nanofibrous hollow microspheres/chondrocytes group achieved substantially better cartilage repair than the chondrocytes-alone group that simulates the clinically available autologous chondrocyte implantation procedure. These results indicate that the nanofibrous hollow microspheres are an excellent injectable cell carrier for cartilage regeneration.
为了修复形状复杂的组织缺损,需要一种可注射的细胞载体来实现精确的适配,并尽量减少手术干预。然而,目前可用的可注射载体存在局限性,并未在临床上用于软骨再生。在这里,我们报告了由星形可生物降解聚合物自组装而成的纳米纤维中空微球作为一种可注射的细胞载体。与对照微球相比,这种具有细胞外基质模拟结构和高多孔可注射形式的纳米纤维中空微球,能够有效地容纳细胞并增强软骨再生。在异位植入模型中,纳米纤维中空微球还支持比单独软骨细胞组更大数量和更高质量的软骨再生。在兔关节软骨缺损修复的临界大小模型中,纳米纤维中空微球/软骨细胞组的软骨修复效果明显优于单独软骨细胞组,后者模拟了临床上可用的自体软骨细胞移植程序。这些结果表明,纳米纤维中空微球是一种用于软骨再生的优秀可注射细胞载体。