4.7 Article

Electrospun Nanofibrous Membranes Based on Citric Acid-Functionalized Chitosan Containing rGO-TEPA with Potential Application in Wound Dressings

期刊

POLYMERS
卷 14, 期 2, 页码 -

出版社

MDPI
DOI: 10.3390/polym14020294

关键词

citric acid-functionalized chitosan; rGO-TEPA; nanofibrous architecture; in vitro cytocompatibility; anti-biofilm activity

资金

  1. European Regional Development Fund through the Competitiveness Operational Program 2014-2020, Priority axis 1, Innovative Technologies for Materials Quality Assurance in Health, Energy and Environmental-Center for Innovative Manufacturing Solutions of Smar [P_36_611, 107066]

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The present research work focuses on the design and investigation of electrospun composite membranes based on citric acid-functionalized chitosan containing reduced graphene oxide-tetraethylene pentamine as materials with bio-properties for wound dressing applications. The effect of graphene oxide concentration on the properties of the membranes was extensively studied. The results showed that the designed membranes had good cytocompatibility and anti-biofilm activity.
The present research work is focused on the design and investigation of electrospun composite membranes based on citric acid-functionalized chitosan (CsA) containing reduced graphene oxide-tetraethylene pentamine (CsA/rGO-TEPA) as materials with opportune bio-properties for applications in wound dressings. The covalent functionalization of chitosan (CS) with citric acid (CA) was achieved through the EDC/NHS coupling system and was checked by H-1-NMR spectroscopy and FTIR spectrometry. The mixtures to be electrospun were formulated by adding three concentrations of rGO-TEPA into the 1/1 (w/w) CsA/poly (ethylene oxide) (PEO) solution. The effect of rGO-TEPA concentration on the morphology, wettability, thermal stability, cytocompatibility, cytotoxicity, and anti-biofilm activity of the nanofibrous membranes was extensively investigated. FTIR and Raman results confirmed the covalent and non-covalent interactions that appeared between the system's compounds, and the exfoliation of rGO-TEPA sheets within the CsA in the presence of PEO (CsA/P) polymer matrix, respectively. SEM analysis emphasized the nanofibrous architecture of membranes and the presence of rGO-TEPA sheets entrapped into the CsA nanofiber structure. The MTT cellular viability assay showed a good cytocompatibility with the highest level of cell development and proliferation registered for the CsA/P composite nanofibrous membrane with 0.250 wt.% rGO-TEPA. The designed nanofibrous membranes could have potential applications in wound dressings, given that they showed a good anti-biofilm activity against Gram-negative Pseudomonas aeruginosa and Gram-positive Staphylococcus aureus bacterial strains.

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