4.0 Article

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

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BIOINTERPHASES
卷 7, 期 1-4, 页码 -

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SPRINGER
DOI: 10.1007/s13758-012-0022-1

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资金

  1. New Jersey Commission on Science and Technology Stem Cell CORE Grant
  2. New Jersey Commission on Spinal Cord Research Exploratory Grant
  3. NSF IGERT [0801620]
  4. NIH [EB001046]
  5. NJCSCR Graduate Fellowship [SCR-2011-Fellowship-0038]
  6. Division Of Graduate Education
  7. Direct For Education and Human Resources [0801620] Funding Source: National Science Foundation

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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, micro-scale 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 beta III-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 bio-interfacially engineered substrates to cooperatively enhance neuronal phenotypes on polymers of relevance to tissue engineering.

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