血管生成
治疗性血管生成
体内
再生(生物学)
细胞
细胞疗法
遗传增强
斑马鱼
化学
微球
新生血管
癌症研究
医学
细胞生物学
生物
生物技术
基因
生物化学
工程类
化学工程
作者
Jian Shen,Yongli Ji,Mingjun Xie,Huijie Zhao,Xuan Wang,Yin Li,Xiaohua Yu,Fangfang Xu,Sheng-an Su,Jing Nie,Yao Xie,Qing Gao,Hong Ma,Xueying Ke,Zhenyu Shi,Jianzhong Fu,Zhenjie Liu,Yong He,Meixiang Xiang
标识
DOI:10.1016/j.msec.2020.110896
摘要
Cell therapy is a promising strategy in which living cells or cellular materials are delivered to treat a variety of diseases. Here, we developed an electrospray bioprinting method to rapidly generate cell-laden hydrogel microspheres, which limit the migration of the captured cells and provide an immunologically privileged microenvironment for cell survival in vivo. Currently, therapeutic angiogenesis aims to induce collateral vessel formation after limb ischemia. However, the clinical application of gene and cell therapy has been impeded by concerns regarding its inefficacy, as well as the associated risk of immunogenicity and oncogenicity. In this study, hydrogel microspheres encapsulating VEGF-overexpressing HEK293T cells showed good safety via subcutaneously injecting into male C57BL/6 mice. In addition, these cell-modified microspheres effectively promoted angiogenesis in a mouse hind-limb ischemia model. Therefore, we demonstrated the great therapeutic potential of this approach to induce angiogenesis in limb ischemia, indicating that bioprinting has a bright future in cell therapy.
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