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Immobilization of heparan sulfate on electrospun meshes to support embryonic stem cell culture and differentiation.


ABSTRACT: As our understanding of what guides the behavior of multi- and pluripotent stem cells deepens, so too does our ability to utilize certain cues to manipulate their behavior and maximize their therapeutic potential. Engineered, biologically functionalized materials have the capacity to influence stem cell behavior through a powerful combination of biological, mechanical, and topographical cues. Here, we present the development of a novel electrospun scaffold, functionalized with glycosaminoglycans (GAGs) ionically immobilized onto the fiber surface. Bound GAGs retained the ability to interact with GAG-binding molecules and, crucially, presented GAG sulfation motifs fundamental to mediating stem cell behavior. Bound GAG proved to be biologically active, rescuing the neural differentiation capacity of heparan sulfate-deficient mouse embryonic stem cells and functioning in concert with FGF4 to facilitate the formation of extensive neural processes across the scaffold surface. The combination of GAGs with electrospun scaffolds creates a biomaterial with potent applicability for the propagation and effective differentiation of pluripotent stem cells.

SUBMITTER: Meade KA 

PROVIDER: S-EPMC3581394 | biostudies-literature | 2013 Feb

REPOSITORIES: biostudies-literature

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Immobilization of heparan sulfate on electrospun meshes to support embryonic stem cell culture and differentiation.

Meade Kate A KA   White Kathryn J KJ   Pickford Claire E CE   Holley Rebecca J RJ   Marson Andrew A   Tillotson Donna D   van Kuppevelt Toin H TH   Whittle Jason D JD   Day Anthony J AJ   Merry Catherine L R CL  

The Journal of biological chemistry 20121212 8


As our understanding of what guides the behavior of multi- and pluripotent stem cells deepens, so too does our ability to utilize certain cues to manipulate their behavior and maximize their therapeutic potential. Engineered, biologically functionalized materials have the capacity to influence stem cell behavior through a powerful combination of biological, mechanical, and topographical cues. Here, we present the development of a novel electrospun scaffold, functionalized with glycosaminoglycans  ...[more]

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