Antimicrobial properties and biocompatibility of semi-synthetic carbohydrate-based ionic hydrogels

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Original languageEnglish
Pages (from-to)30719-30731
Number of pages13
JournalRSC Advances
Volume14
Issue number42
Early online date26 Sept 2024
Publication statusPublished - 2024

Abstract

Hydrogels have gained significant interest in the last decades, especially in the medical sector, due to their versatile properties. While hydrogels from naturally occurring polysaccharides (e.g. cellulose) are well-known, those produced from polymerizable carbohydrate-based monomers remain underexplored. However, these semi-synthetic hydrogels offer the great advantage of having adjustable properties for customization depending on their application. The objective of this study was to characterize semi-synthetic carbohydrate-based ionic hydrogels produced from GVIM-I (glucosyl vinyl imidazolium iodide). The antimicrobial activity was evaluated using the disk diffusion method, which demonstrated that all samples exhibit inhibitory effects on the growth of Candida auris. In vitro biocompatibility was determined by cell viability studies with L929 mouse fibroblasts, and a correlation was observed between eluate concentration and cell viability. In particular, the type of initiator system employed for polymerization was found to affect cell viability. The direct contact assessments showed that specific pre-treatments of the hydrogels resulted in higher cell viability than non-treated hydrogels. The results also revealed the impact of crosslinker concentration and type and identified poly(ethylene glycol)diacrylate (PEGDA) 575 as a promising crosslinker for future medical applications. LC-MS analysis of the wash medium identified unreacted GVIM-I as the leached material, which is presumed to be the cause of the observed cytotoxicity. Overall, the study provides valuable insights into the characteristics of GVIM-I based hydrogels and sheds light on the factors that influence their cytotoxicity and potential for medical application.

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Antimicrobial properties and biocompatibility of semi-synthetic carbohydrate-based ionic hydrogels. / Lambrecht, Sina; Gazizova, Alina; Kara, Selin et al.
In: RSC Advances, Vol. 14, No. 42, 2024, p. 30719-30731.

Research output: Contribution to journalArticleResearchpeer review

Lambrecht S, Gazizova A, Kara S, Meyer J, Jopp S. Antimicrobial properties and biocompatibility of semi-synthetic carbohydrate-based ionic hydrogels. RSC Advances. 2024;14(42):30719-30731. Epub 2024 Sept 26. doi: 10.1039/D4RA05695G
Lambrecht, Sina ; Gazizova, Alina ; Kara, Selin et al. / Antimicrobial properties and biocompatibility of semi-synthetic carbohydrate-based ionic hydrogels. In: RSC Advances. 2024 ; Vol. 14, No. 42. pp. 30719-30731.
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AU - Jopp, Stefan

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