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首页> 外文期刊>Bioactive Materials >Injectable silk sericin scaffolds with programmable shape-memory property and neuro-differentiation-promoting activity for individualized brain repair of severe ischemic stroke
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Injectable silk sericin scaffolds with programmable shape-memory property and neuro-differentiation-promoting activity for individualized brain repair of severe ischemic stroke

机译:可注射丝绸硅粉支架,具有可编程形状记忆性能和神经分化的促进活性,用于严重缺血性卒中的个性化脑修复

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摘要

Severe ischemic stroke damages neuronal tissue, forming irregular-shaped stroke cavities devoid of supporting structure. Implanting biomaterials to provide structural and functional support is thought to favor ingrowth of regenerated neuronal networks. Injectable hydrogels capable of in situ gelation are often utilized for stroke repair, but challenged by incomplete gelation and imprecise control over end-macrostructure. Injectable shape-memory scaffolds might overcome these limitations, but are not explored for stroke repair. Here, we report an injectable, photoluminescent, carbon-nanotubes-doped sericin scaffold (CNTs-SS) with programmable shape-memory property. By adjusting CNTs' concentrations, CNTs-SS′ recovery dynamics can be mathematically calculated at the scale of seconds, and its shapes can be pre-designed to precisely match any irregular-shaped cavities. Using a preclinical stroke model, we show that CNTs-SS with the customized shape is successfully injected into the cavity and recovers its pre-designed shape to well fit the cavity. Notably, CNTs-SS' near-infrared photoluminescence enables non-invasive, real-time tracking after in vivo implantation. Moreover, as a cell carrier, CNTs-SS not only deliver bone marrow mesenchymal stem cells (BMSCs) into brain tissues, but also functionally promote their neuronal differentiation. Together, we for the first time demonstrate the feasibility of applying injectable shape-memory scaffolds for stroke repair, paving the way for personalized stroke repair.
机译:严重缺血性卒中损伤神经元组织,形成没有支撑结构的不规则形状的行程腔。植入生物材料以提供结构和功能载体被认为有利于再生神经元网络的生长。能够以原位凝胶化的可注射水凝胶通常用于中风修复,但是通过不完全凝胶化和对末端宏观结构的不精确控制而挑战。可注射形状记忆脚手架可能会克服这些限制,但没有探索冲程修复。在这里,我们通过可编程形状记忆性能报告可注射的,光致发光的碳 - 纳米管掺杂的硅蛋白支架(CNTS-SS)。通过调整CNTS的浓度,CNTS-SS'恢复动态可以在秒的比例下数学计算,并且其形状可以预先设计以精确地匹配任何不规则形状的空腔。使用临床终端中风模型,我们表明具有定制形状的CNTS-S成功地注入腔体并恢复其预先设计的形状,以适合腔。值得注意的是,CNTS-SS的近红外光致发光使得在体内植入之后能够进行非侵入性的实时跟踪。此外,作为细胞载体,CNTS-S不仅将骨髓间充质干细胞(BMSC)递送至脑组织,而且在功能上促进其神经元分化。我们首次首次展示了应用可注射形状记忆脚手架用于行程修复的可行性,为个性化行程修复铺平道路。

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