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生物指导性支架可增强干细胞植入以实现功能性组织再生。

Bioinstructive scaffolds enhance stem cell engraftment for functional tissue regeneration.

作者信息

Wu Di, Eugenis Ioannis, Hu Caroline, Kim Soochi, Kanugovi Abhijnya, Yue Shouzheng, Wheeler Joshua R, Fathali Iman, Feeley Sonali, Shrager Joseph B, Huang Ngan F, Rando Thomas A

机构信息

Department of Neurology and Neurological Sciences, Stanford University School of Medicine, Stanford, CA, USA.

Department of Neurology, UCLA, Los Angeles, CA, USA.

出版信息

Nat Mater. 2025 Apr 17. doi: 10.1038/s41563-025-02212-y.

Abstract

Stem cell therapy is a promising approach for tissue regeneration after traumatic injury, yet current applications are limited by inadequate control over the fate of stem cells after transplantation. Here we introduce a bioconstruct engineered for the staged release of growth factors, tailored to direct different phases of muscle regeneration. The bioconstruct is composed of a decellularized extracellular matrix containing polymeric nanocapsules sequentially releasing basic fibroblast growth factor and insulin-like growth factor 1, which promote the proliferation and differentiation of muscle stem cells, respectively. When applied to a volumetric muscle loss defect in an animal model, the bioconstruct enhances myofibre formation, angiogenesis, innervation and functional restoration. Further, it promotes functional muscle formation with human or aged murine muscle stem cells, highlighting the translational potential of this bioconstruct. Overall, these results highlight the potential of bioconstructs with orchestrated growth factor release for stem cell therapies in traumatic injury.

摘要

干细胞疗法是创伤性损伤后组织再生的一种有前景的方法,但目前的应用受到移植后对干细胞命运控制不足的限制。在此,我们介绍一种生物构建体,其设计用于生长因子的阶段性释放,以指导肌肉再生的不同阶段。该生物构建体由含有聚合物纳米胶囊的脱细胞细胞外基质组成,纳米胶囊依次释放碱性成纤维细胞生长因子和胰岛素样生长因子1,分别促进肌肉干细胞的增殖和分化。当应用于动物模型中的大面积肌肉损失缺损时,该生物构建体可增强肌纤维形成、血管生成、神经支配和功能恢复。此外,它还能促进人或老龄小鼠肌肉干细胞形成功能性肌肉,突出了这种生物构建体的转化潜力。总体而言,这些结果凸显了具有精心编排的生长因子释放功能的生物构建体在创伤性损伤干细胞治疗中的潜力。

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