Functionalizable bacterial cellulose composite membrane for guided tissue regeneration

羧甲基纤维素 化学 静电纺丝 生物高聚物 环氧乙烷 纤维素 纳米纤维 细菌纤维素 化学工程 色谱法 核化学 高分子化学 聚合物 生物化学 有机化学 工程类 共聚物
作者
Puthon Kraisuriyawong,Chatvadee Kornsuthisopon,Prasit Pavasant,Kaewta Rattanapisit,Waranyoo Phoolcharoen,Voravee P. Hoven
出处
期刊:International Journal of Biological Macromolecules [Elsevier]
卷期号:: 131655-131655
标识
DOI:10.1016/j.ijbiomac.2024.131655
摘要

This research aims to develop guided tissue regeneration (GTR) membranes from bacterial cellulose (BC), a natural polysaccharide-based biopolymer. A double-layered BC composite membrane was prepared by coating the BC membrane with mixed carboxymethyl cellulose/poly(ethylene oxide) (CMC/PEO) fibers via electrospinning. The CMC/PEO-BC membranes were then characterized for their chemical and physical characteristics. The 8 % (wt/v) CMC/PEO (1,1) aqueous solution yielded well-defined electrospun CMC/PEO nanofibers (125 ± 10 nm) without beads. The CMC/PEO-BC membranes exhibited good mechanical and swelling properties as well as good cytocompatibility against human periodontal ligament cells (hPDLs). Its functionalizability via carboxyl entities in CMC was tested using the calcium-binding domain of plant-derived recombinant human osteopontin (p-rhOPN-C122). As evaluated by enzyme-linked immunosorbent assay, a 98–99 % immobilization efficiency was achieved in a concentration-dependent manner over an applied p-rhOPN-C122 concentration range of 7.5–30 ng/mL. The biological function of the membrane was assessed by determining the expression levels of osteogenic-related gene transcripts using quantitative real-time reverse-transcriptase polymerase chain reaction. Mineralization assay indicated that the p-rhOPN-C122 immobilized CMC/PEO-BC membrane promoted hPDLs osteogenic differentiation. These results suggested that the developed membrane could serve as a promising GTR membrane for application in bone tissue regeneration.
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