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Oriented Multimeric Biointerfaces of the L1 Cell Adhesion Molecule: An Approach to Enhance Neuronal and Neural Stem Cell Functions on 2-D and 3-D Polymer Substrates

机译:定向的L1细胞粘附分子的多聚生物界面:增强2-D和3-D聚合物基质上的神经元和神经干细胞功能的一种方法。

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摘要

This article focuses on elucidating the key presentation features of neurotrophic ligands at polymer interfaces. Different biointerfacial configurations of the human neural cell adhesion molecule L1 were established on two-dimensional films and three-dimensional fibrous scaffolds of synthetic tyrosine-derived polycarbonate polymers and probed for surface concentrations, microscale organization, and effects on cultured primary neurons and neural stem cells. Underlying polymer substrates were modified with varying combinations of protein A and poly-d-lysine to modulate the immobilization and presentation of the Fc fusion fragment of the extracellular domain of L1 (L1-Fc). When presented as an oriented and multimeric configuration from protein A-pretreated polymers, L1-Fc significantly increased neurite outgrowth of rodent spinal cord neurons and cerebellar neurons as early as 24 h compared to the traditional presentation via adsorption onto surfaces treated with poly-d-lysine. Cultures of human neural progenitor cells screened on the L1-Fc/polymer biointerfaces showed significantly enhanced neuronal differentiation and neuritogenesis on all protein A oriented substrates. Notably, the highest degree of βIII-tubulin expression for cells in 3-D fibrous scaffolds were observed in protein A oriented substrates with PDL pretreatment, suggesting combined effects of cell attachment to polycationic charged substrates with subcellular topography along with L1-mediated adhesion mediating neuronal differentiation. Together, these findings highlight the promise of displays of multimeric neural adhesion ligands via biointerfacially engineered substrates to “cooperatively” enhance neuronal phenotypes on polymers of relevance to tissue engineering.
机译:本文着重于阐明聚合物界面神经营养配体的关键表达特征。在合成酪氨酸衍生的聚碳酸酯聚合物的二维薄膜和三维纤维支架上建立了人类神经细胞粘附分子L1的不同生物界面构型,并检测了其表面浓度,微观组织以及对培养的原代神经元和神经干细胞的影响。用蛋白质A和聚d-赖氨酸的不同组合修饰基础聚合物底物,以调节L1(L1-Fc)细胞外域的Fc融合片段的固定和呈递。当以蛋白质A预处理的聚合物的定向和多聚构型形式呈现时,与传统的呈现方式相比,L1-Fc可以在24小时内显着增加啮齿类脊髓神经元和小脑神经元的神经突向外生长,而传统的呈现方式是通过吸附在经d-d-处理的表面上赖氨酸。在L1-Fc /聚合物生物界面上筛选的人类神经祖细胞培养物在所有蛋白A导向的底物上均显示神经元分化和神经形成显着增强。值得注意的是,在经过PDL预处理的蛋白A导向基质中,观察到了3-D纤维支架中细胞的最高βIII-微管蛋白表达水平,这表明细胞附着于聚阳离子带电基质的细胞具有亚细胞形貌以及L1介导的粘附介导神经元的联合作用。差异化。总之,这些发现凸显了通过生物界面工程底物展示多聚神经粘附配体的前景,以“合作”增强与组织工程相关的聚合物上的神经元表型。

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