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Chitosan--oligo(L,L-lactide) Copolymer Hydrogel Potential for Neural Stem Cell Differentiation. | LitMetric

AI Article Synopsis

  • Researchers assessed the chitosan--oligo(L,L-lactide) copolymer hydrogel (CLC) for its potential use in central nervous system tissue engineering, focusing on its biomechanical properties and biocompatibility with neural progenitor cells.
  • The CLC hydrogel was found to be optically transparent, noncytotoxic, and supported the growth and differentiation of human neural stem/precursor cells, specifically H9-derived NSCs and directly reprogrammed PCNs.
  • The study suggests that CLC hydrogel may be a useful substrate for developing tissue-engineered solutions for treating neurodegenerative diseases due to its ability to maintain cell multipotency and promote neuronal differentiation.

Article Abstract

We evaluated the applicability of chitosan--oligo(L,L-lactide) copolymer (CLC) hydrogel for central nervous system tissue engineering. The biomechanical properties of the CLC hydrogel were characterized and its biocompatibility was assessed with neural progenitor cells obtained from two different sources: H9-derived neural stem cells (H9D-NSCs) and directly reprogrammed neural precursor cells (drNPCs). Our study found that the optically transparent CLC hydrogel possessed biomechanical characteristics suitable for culturing human neural stem/precursor cells and was noncytotoxic. When seeded on films prepared from CLC copolymer hydrogel, both H9D-NSC and drNPC adhered well, expanded and exhibited signs of spontaneous differentiation. While H9D-NSC mainly preserved multipotency as shown by a high proportion of Nestin+ and Sox2+ cells and a comparatively lower expression of the neuronal markers βIII-tubulin and MAP2, drNPCs, obtained by direct reprogramming, differentiated more extensively along the neuronal lineage. Our study indicates that the CLC hydrogel may be considered as a substrate for tissue-engineered constructs, applicable for therapy of neurodegenerative diseases. Impact statement We synthetized a chitosan--oligo(L,L-lactide) hydrogel that sustained multipotency of embryonic-derived neural stem cells (NSCs) and supported differentiation of directly reprogrammed NSC predominantly along the neuronal lineage. The hydrogel exhibited no cytotoxicity , both in extraction and contact cytotoxicity tests. When seeded on the hydrogel, both types of NSCs adhered well, expanded, and exhibited signs of spontaneous differentiation. The biomechanical properties of the hydrogel were similar to that of human spinal cord with incised pia mater. These data pave the way for further investigations of the hydrogel toward its applicability in central nervous system tissue engineering.

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Source
http://dx.doi.org/10.1089/ten.TEA.2019.0265DOI Listing

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