采用主-客体超分子组装聚乙二醇和还原氧化石墨烯双交联剂制备导电壳聚糖基纳米杂化水凝胶

Biomedical engineering advances Pub Date : 2025-06-01 Epub Date: 2024-12-18 DOI:10.1016/j.bea.2024.100141
Javad Saberi , Fathallah Karimzadeh , Jaleh Varshosaz , Sheyda Labbaf
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引用次数: 0

摘要

本文基于β -环糊精修饰的壳聚糖(宿主,Cs-CD)和金刚烷接枝的聚乙二醇(客体,PEG-AD)之间的自组装超分子相互作用以及与还原氧化石墨烯(rGO)的二次交联,开发了一种基于壳聚糖的剪切减薄导电纳米杂化水凝胶。HG大分子的浓度决定了形成水凝胶的流变学和力学行为、客体大分子的比例和还原氧化石墨烯的量。双交联水凝胶(大分子浓度=10 wt%) H:G = 1:2 (CPH 102G3)具有最高的机械强度和韧性(约3倍),相比(10 wt%) 1:2水凝胶(CPH 102)。此外,(15% wt) 1:2水凝胶(CPH 152)的机械强度和韧性是(10 wt%) 1:4水凝胶(CPH 104)的6倍左右。Cs-PEG/rGO纳米杂化水凝胶的电导率在3.5 ~ 6.55 mS.cm-1之间,在心肌组织电导率范围内。研究了水凝胶的溶胀率和降解率。CPH 102G3在磷酸盐缓冲盐水溶液中浸泡15天后,体重下降低于45%。最后,所有水凝胶样品在接种24小时后均显示无细胞毒性。120h后观察细胞增殖。总之,Cs-PEG/rGO水凝胶有望成为电活性组织工程应用中具有可控性能的可注射支架。
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Shear-thinning conductive chitosan-based nano-hybrid hydrogels by host–guest supramolecular assembled poly ethylene glycol and reduced graphene oxide dual cross-linkers
Here, a chitosan-based shear-thinning and conductive nano-hybrid hydrogel is developed based on self-assembled host-guest (HG) supramolecular interaction between beta-cyclodextrin modified chitosan (Host, Cs-CD) and adamantane grafted polyethylene glycol (Guest, PEG-AD) and secondary cross-linking with reduced graphene oxide (rGO). The concentration of HG macromers handled the rheological and mechanical behavior of the forming hydrogel, the ratio of the guest macromer, and the amount of rGO. Dual cross-linking hydrogel (macromers concentration=10 wt%) H:G = 1:2 (CPH 102G3) had the highest mechanical strength and toughness (about 3-folds) compared to the (10 wt%) 1:2 hydrogel (CPH 102). Also, (15 %wt) 1:2 Hydrogel (CPH 152) had mechanical strength and toughness of about 6-folds compared to (10 wt%) 1:4 hydrogel (CPH 104). The electro-conductivity of Cs-PEG/rGO nano-hybrid hydrogel was between 3.5 to 6.55 mS.cm-1 and within the myocardial tissue conductivity range. The swelling ratio and degradation rate of hydrogels were also investigated. CPH 102G3 displayed lower than 45 % weight loss after 15 days of immersion in a phosphate buffer saline solution. Finally, all hydrogel samples demonstrated non-cytotoxicity 24 h post-seeding. After 120 h, cell proliferation was observed. In conclusion, Cs-PEG/rGO hydrogel promises to emerge as an injectable scaffold with controllable properties for electroactive tissue engineering applications.
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Biomedical engineering advances
Biomedical engineering advances Bioengineering, Biomedical Engineering
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59 days
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