Literature DB >> 34396936

Development and evaluation of hyaluronan nanocomposite conduits for neural tissue regeneration.

Ismael Mullor Ruiz1,2, Guillermo Vilariño-Feltrer1, Hayk Mnatsakanyan1, Ana Vallés-Lluch1,3, Manuel Monleón Pradas1,3.   

Abstract

Hyaluronan-based hydrogels are among the most promising neural tissue engineering materials because of their biocompatibility and the immunomodulation capabilities of their degradation byproducts. Despite these features, the problems related to their handling and mechanical properties have not yet been solved. In the present work it is proposed to address these drawbacks through the development of nanohybrid materials in which different nanometric phases (carbon nanotubes, mesoporous silica nanoparticles) are embedded in a crosslinked hyaluronan matrix. These nanohybrid matrices were next processed in the shape of cylindrical conduits aimed at promoting and improving neural stem cell differentiation and regeneration in neural tracts. These constructs could be of use specifically for peripheral nerve regeneration. Results of the study show that the inclusion of the different phases improved physico-chemical features of the gel such as its relative electrical permittivity, water intake and elastic modulus, giving hints on how the nanometric phase interacts with hyaluronan in the composite as well as for their potential in combined therapeutic approaches. Regarding the in vitro biological behavior of the hybrid tubular scaffolds, an improved early cell adhesion and survival of Schwann cells in their lumen was found, as compared to conduits made of pure hyaluronan gels. Furthermore, the differentiation and survival of neural precursors was not compromised, despite alleged safety concerns.

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Keywords:  Hyaluronic acid; MWCNTs; hydrogel; mesoporous silica; multiwalled carbon nanotubes; neural conduit

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Year:  2021        PMID: 34396936     DOI: 10.1080/09205063.2021.1963930

Source DB:  PubMed          Journal:  J Biomater Sci Polym Ed        ISSN: 0920-5063            Impact factor:   3.517


  1 in total

1.  Biomaterials for Neurotherapeutics: From Lab Discovery to Clinical Application.

Authors:  Qiang Ao; Ting Li
Journal:  Curr Neuropharmacol       Date:  2021       Impact factor: 7.708

  1 in total

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