Faculty of Medical Engineering, University Politehnica of Bucharest, 011061 Bucharest, Romania.
Advanced Polymer Materials Group, University Politehnica of Bucharest, 011061 Bucharest, Romania.
Int J Mol Sci. 2022 May 10;23(10):5336. doi: 10.3390/ijms23105336.
We designed graphene oxide composites with increased morphological and structural variability using fatty acid-coupled polysaccharide co-polymer as the continuous phase. The matrix was synthesized by N, O-acylation of chitosan with palmitic and lauric acid. The obtained co-polymer was crosslinked with genipin and composited with graphene oxide. FTIR spectra highlighted the modification and multi-components interaction. DLS, SEM, and contact angle tests demonstrated that the conjugation of hydrophobic molecules to chitosan increased surface roughness and hydrophilicity, since it triggered a core-shell macromolecular structuration. Nanoindentation revealed a notable durotaxis gradient due to chitosan/fatty acid self-organization and graphene sheet embedment. The composited building blocks with graphene oxide were more stable during in vitro enzymatic degradation tests and swelled less. In vitro viability, cytotoxicity, and inflammatory response tests yielded promising results, and the protein adsorption test demonstrated potential antifouling efficacy. The robust and stable substrates with heterogeneous architecture we developed show promise in biomedical applications.
我们使用脂肪酸偶联多糖共聚物作为连续相,设计了具有更高形态和结构可变性的氧化石墨烯复合材料。基质是通过用棕榈酸和月桂酸对壳聚糖进行 N、O 酰化合成的。所得共聚物用京尼平交联并与氧化石墨烯复合。FTIR 光谱突出了修饰和多组分相互作用。DLS、SEM 和接触角测试表明,疏水分子与壳聚糖的结合增加了表面粗糙度和亲水性,因为它引发了核壳型大分子结构。纳米压痕测试表明,由于壳聚糖/脂肪酸的自组织和石墨烯片的嵌入,存在显著的抗粘性梯度。在体外酶降解试验中,复合有氧化石墨烯的构建块更稳定,且溶胀更少。体外生存能力、细胞毒性和炎症反应测试结果令人满意,并且蛋白质吸附测试显示出潜在的抗污效果。我们开发的具有异质结构的坚固且稳定的基底在生物医学应用中具有广阔的前景。