Published September 2018 | Version v1
Journal article

Cellulose exopolysaccharide from sugarcane molasses as a suitable substrate for 2D and 3D neuron and astrocyte primary cultures

  • 1. Champalimaud Centre for the Unknown, Champalimaud Research (Portugal)
  • 2. Universidade Federal do Pernambuco, Departamento de Fisiologia e Farmacologia, Centro de Biociências (Brazil)
  • 3. Universidade Federal de Pernambuco, Biofísica e Radiobiologia, Centro de Biociências (Brazil)
  • 4. Université Pierre and Marie Curie, Paris VI, INSERM, UMR-839, Institut du Fer a Moulin (France)
  • 5. Universidade Federal de Pernambuco, Departamento de Cirurgia, Centro de Ciências da Saúde (Brazil)

Description

Bacteria-synthesized polysaccharides have attracted interest for biomedical applications as promising biomaterials to be used as implants and scaffolds. The present study tested the hypothesis that cellulose exopolysaccharide (CEC) produced from sugarcane molasses of low cost and adequate purity would be suitable as a template for 2D and 3D neuron and/or astrocyte primary cultures, considering its low toxicity. CEC biocompatibility in these primary cultures was evaluated with respect to cell viability, adhesion, growth and cell function (calcium imaging). Polystyrene or Matrigel® matrix were used as comparative controls. We demonstrated that the properties of this CEC in the 2D or 3D configurations are suitable for differentiation of cortical astrocytes and neurons in single or mixed cultures. No toxicity was detected in neurons that showed NMDA-induced Ca2+ influx. Unlike other polysaccharides of bacterial synthesis, the CEC was efficient as a support even in the absence of surface conjugation with extracellular matrix proteins, maintaining physiological characteristics of cultured neural cells. These observations open up the perspective for development of a novel 3D biofunctional scaffold produced from bacterial cellulose and obtained from renewable sources whose residues are not pollutants. Its low cost and possibility to be manufactured in scale are also suitable for potential applications in regenerative medicine.

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Additional details

Identifiers

Publishing Information

Journal Title
Journal of Materials Science. Materials in Medicine
Journal Volume
29
Journal Issue
9
Journal Page Range
p. 1-12
ISSN
0957-4530
CODEN
JSMMEL

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Copyright (c) 2018 Springer Science+Business Media, LLC, part of Springer Nature
Notes
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