...
首页> 外文期刊>Nanoscale >Effects of an injectable functionalized selfassembling nanopeptide hydrogel on angiogenesis and neurogenesis for regeneration of the central nervous system
【24h】

Effects of an injectable functionalized selfassembling nanopeptide hydrogel on angiogenesis and neurogenesis for regeneration of the central nervous system

机译:注射官能团的影响selfassembling nanopeptide水凝胶在血管新生和再生的神经发生中枢神经系统

获取原文
获取原文并翻译 | 示例

摘要

Brain injury is a devastating medical condition and represents a major health problem. Tissue and organ reconstruction have been regarded as promising therapeutic strategies. Here, we propose a regenerative methodology focusing on the provision of functionalized nanopeptide scaffolds to facilitate angiogenesis and neurogenesis at the brain injury site. The peptide RADA16-SVVYGLR undergoes self-assembly to construct an interconnected network with intertwining nanofibers, and can be controlled to display various physicochemical properties by the adjustment of microenvironmental factors such as pH and ion concentration. Such scaffolds can support endothelial cells to form tube-like structures and neural stem cells to survive and proliferate. In an in vivo zebrafish brain injury model, sprouting angiogenesis and developmental neurogenesis were achieved, and functional recovery of the severed optic tectum was enhanced in RADA16-SVVYGLR hydrogel-implanted zebrafish. This nanopeptide hydrogel was non-toxic to zebrafish embryos during early developmental stages. This angiogenic self-assembling peptide hydrogel had programmable physical properties, good biocompatibility, and regenerative ability for functional recovery in the injured brain. We suggest that functionalized self-assembling peptides encapsulated with neural stem cells or used alone could be an attractive and effective therapeutic modality for brain injury and diseases (e.g., trauma, stroke, tumor, degenerative neurological disorders, etc.).
机译:脑损伤是一个毁灭性的疾病和代表一个主要卫生问题。器官重建被视为有前景的治疗策略。提出一个专注于再生方法功能化nanopeptide的条款促进血管生成和支架脑损伤的神经发生。肽RADA16-SVVYGLR进行自组装构建一个相互联系的网络交织的纳米纤维,可以控制显示各种物理化学性质的调整微环境等因素pH值和离子浓度。支持内皮细胞形成管状结构和神经干细胞和生存增殖。模型中,血管生成和发展神经发生是实现和功能复苏的切断视神经顶盖被增强在RADA16-SVVYGLR hydrogel-implanted斑马鱼。这nanopeptide水凝胶是无毒的斑马鱼胚胎在发育早期阶段。水凝胶可编程的物理性质,良好的生物相容性和再生能力受伤的大脑功能恢复。表明功能化自组装肽与神经干细胞或封装单独使用可能是一个有吸引力的和有效的治疗脑损伤和形态疾病(如创伤、中风、肿瘤、退行性神经系统疾病,等等)。

著录项

相似文献

  • 外文文献
  • 中文文献
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号