Literature DB >> 23239823

Engineering an in situ crosslinkable hydrogel for enhanced remyelination.

Xiaowei Li1, Xiaoyan Liu, Lin Cui, Christopher Brunson, Wen Zhao, Narayan R Bhat, Ning Zhang, Xuejun Wen.   

Abstract

Remyelination has to occur to fully regenerate injured spinal cords or brain tissues. A growing body of evidence has suggested that exogenous cell transplantation is one promising strategy to promote remyelination. However, direct injection of neural stem cells or oligodendrocyte progenitor cells (OPCs) to the lesion site may not be an optimal therapeutic strategy due to poor viability and functionality of transplanted cells resulted from the local hostile tissue environment. The overall objective of this study was to engineer an injectable biocompatible hydrogel system as a supportive niche to provide a regeneration permissive microenvironment for transplanted OPCs to survive, functionally differentiate, and remyelinate central nervous system (CNS) lesions. A highly biocompatible hydrogel, based on thiol-functionalized hyaluronic acid and thiol-functionalized gelatin, which can be crosslinked by poly-(ethylene glycol) diacrylate (PEGDA), was used. These hydrogels were optimized first regarding cell adhesive properties and mechanical properties to best support the growth properties of OPCs in culture. Transplanted OPCs with the hydrogels optimized in vitro exhibited enhanced survival and oligodendrogenic differentiation and were able to remyelinate demyelinated axons inside ethidium bromide (EB) demyelination lesion in adult spinal cord. This study provides a new possible therapeutic approach to treat CNS injuries in which cell therapies may be essential.

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Year:  2012        PMID: 23239823      PMCID: PMC3574280          DOI: 10.1096/fj.12-211151

Source DB:  PubMed          Journal:  FASEB J        ISSN: 0892-6638            Impact factor:   5.191


  36 in total

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4.  Materials science. Hydrogel cell cultures.

Authors:  Melinda C Cushing; Kristi S Anseth
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Authors:  Tamir Ben-Hur; Steven A Goldman
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6.  Self-assembling nanofibers inhibit glial scar formation and promote axon elongation after spinal cord injury.

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Review 8.  Myelin regeneration in demyelinating disorders: new developments in biology and clinical pathology.

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9.  Differentiation block of oligodendroglial progenitor cells as a cause for remyelination failure in chronic multiple sclerosis.

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  17 in total

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Review 3.  25th anniversary article: Rational design and applications of hydrogels in regenerative medicine.

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Authors:  Steven M Wellman; Franca Cambi; Takashi Dy Kozai
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6.  Nanoparticle-mediated transcriptional modification enhances neuronal differentiation of human neural stem cells following transplantation in rat brain.

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7.  Engineering an Artificial T-Cell Stimulating Matrix for Immunotherapy.

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8.  In Vivo Imaging of Allografted Glial-Restricted Progenitor Cell Survival and Hydrogel Scaffold Biodegradation.

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9.  Synthesis and characterization of a hyaluronic acid-based hydrogel with antioxidative and thermosensitive properties.

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10.  The Effect of Electrospun Gelatin Fibers Alignment on Schwann Cell and Axon Behavior and Organization in the Perspective of Artificial Nerve Design.

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Journal:  Int J Mol Sci       Date:  2015-06-08       Impact factor: 5.923

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