首页> 外文期刊>Acta biomaterialia >Engineered N-cadherin and L1 biomimetic substrates concertedly promote neuronal differentiation, neurite extension and neuroprotection of human neural stem cells
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Engineered N-cadherin and L1 biomimetic substrates concertedly promote neuronal differentiation, neurite extension and neuroprotection of human neural stem cells

机译:工程化的N-钙粘着蛋白和L1仿生底物协同促进人类神经干细胞的神经元分化,神经突延伸和神经保护

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We investigated the design of neurotrophic biomaterial constructs for human neural stem cells, guided by neural developmental cues of N-cadherin and L1 adhesion molecules. Polymer substrates fabricated either as two-dimensional (2-D) films or three-dimensional (3-D) microfibrous scaffolds were functionalized with fusion chimeras of N-cadherin-Fc alone and in combination with L1-Fc, and the effects on differentiation, neurite extension and survival of H9 human-embryonic-stem-cell-derived neural stem cells (H9-NSCs) were quantified. Combinations of N-cadherin and L1-Fc co-operatively enhanced neuronal differentiation profiles, indicating the critical nature of the two complementary developmental cues. Notably, substrates presenting low levels of N-cadherin-Fc concentrations, combined with proportionately higher L1-Fc concentration, most enhanced neurite outgrowth and the degree of MAP2+ and neurofilament-M+ H9-NSCs. Low N-cadherin-Fc alone promoted improved cell survival following oxidative stress, compared to higher concentrations of N-cadherin-Fc alone or combinations with L1-Fc. Pharmacological and antibody blockage studies revealed that substrates presenting low levels of N-cadherin are functionally competent so long as they elicit a threshold signal mediated by homophilic N-cadherin and fibroblast growth factor signaling. Overall, these studies highlight the ability of optimal combinations of N-cadherin and L1 to recapitulate a "neurotrophic" microenvironment that enhances human neural stem cell differentiation and neurite outgrowth. Additionally, 3-D fibrous scaffolds presenting low N-cadherin-Fc further enhanced the survival of H9-NSCs compared to equivalent 2-D films. This indicates that similar biofunctionalization approaches based on N-cadherin and L1 can be translated to 3-D "transplantable" scaffolds with enhanced neurotrophic behaviors. Thus, the insights from this study have fundamental and translational impacts for neural-stem-cell-based regenerative medicine.
机译:我们研究了人类神经干细胞的神经营养生物材料构建体的设计,并以N-钙粘着蛋白和L1粘附分子的神经发育线索为指导。单独制成N-钙粘蛋白-Fc的融合嵌合体,并与L1-Fc结合使用,将制成二维(2-D)膜或三维(3-D)微纤维支架的聚合物基质功能化,并影响分化,量化H9人胚干细胞衍生的神经干细胞(H9-NSCs)的神经突延伸和存活。 N-钙粘着蛋白和L1-Fc的组合合作增强神经元分化概况,表明两个互补的发展线索的关键性质。值得注意的是,底物呈现低水平的N-钙粘着蛋白-Fc浓度,并与成比例的更高的L1-Fc浓度结合,最大程度增强了神经突向外生长以及MAP2 +和神经丝-M + H9-NSC的程度。与较高浓度的单独的N-钙粘蛋白-Fc或与L1-Fc的组合相比,单独的低N-钙粘蛋白-Fc促进了氧化应激后细胞存活的改善。药理和抗体阻滞研究表明,呈现低水平N-钙粘蛋白的底物在功能上是有效的,只要它们引起由同源N-钙粘蛋白和成纤维细胞生长因子信号传导介导的阈值信号即可。总体而言,这些研究强调了N-钙粘蛋白和L1的最佳组合具有概括“神经营养”微环境的能力,该环境增强了人类神经干细胞的分化和神经突的生长。另外,与等效的2-D膜相比,呈现低N-钙粘着蛋白-Fc的3-D纤维支架进一步提高了H9-NSC的存活率。这表明基于N-钙黏着蛋白和L1的类似生物功能化方法可以转化为具有增强的神经营养行为的3-D“可移植”支架。因此,这项研究的见识对基于神经干细胞的再生医学具有根本性和转化性的影响。

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