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Preparation and characterization of bamboo fiber/chitosan/nano-hydroxyapatite composite membrane by ionic crosslinking

机译:离子交联竹纤维/壳聚糖/纳米羟基磷灰石复合膜的制备与表征

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摘要

To obtain an ideal guided bone tissue regeneration (GBR) membrane, carboxylated bamboo fiber (BF) was designed to be introduced into the chitosan/nano-hydroxyapatite (CS/n-HA) system by ionic crosslinking to fabricate a novel BF/CS/n-HA composite membranes with different weight ratios. The formation mechanism of the BF/CS/n-HA ternary composite membrane and the effect of BF different contents on the BF/CS/n-HA composite membranes were studied by Fourier Transform infrared spectroscopy (FT-IR), X-ray diffraction (XRD), scanning electron microscopy (SEM), electromechanical universal tester, in vitro soaking in simulated body fluid (SBF). Results demonstrated that CS and modified BF would be ionic crosslinked by electrostatic interaction to form a three dimensional polyelectrolyte structure, meanwhile, n-HA was loaded in the polyelectrolyte structure by hydrogen bonding, which ensured the modified BF/CS/n-HA composite membranes to possess excellent tensile strength, compared to the CS/n-HA and untreated BF/CS/n-HA composite membrane. Moreover, the weight ratio of the modified BF/CS/n-HA of 2:6:2 displayed the highest tensile strength, whose tensile strength was improved by over two folds than that of CS/n-HA composite membrane owing to the most suitable proportion. In addition, in vitro simulated body fluids soaking results indicated that the modified BF/CS/n-HA composite membranes presented different degradation rates and could promote the apatite to deposit by investigating the weight loss, water absorption rate, SEM morphology observation and tensile strength reduce. All results revealed that the ionic crosslinking of carboxylated BF and CS was conducive to fabricate BF/CS/n-HA composite membrane with higher mechanical property, more suitable degradation and better bioactivity, in contrast with the CS/n-HA and untreated BF/CS/n-HA composite membranes, which had a great promising to obtain more satisfactory GBR membrane, moreover, the study would provide a new application for natural BF in the biomedical membrane field. Graphic abstract In this manuscript, carboxylated bamboo fiber (BF) was designed to be introduced into the chitosan/nano-hydroxyapatite (CS/n-HA) system to fabricate a novel BF/CS/n-HA composite membranes with different weight ratios. The formation mechanism of the BF/CS/n-HA ternary composite membrane and the effect of modified BF different contents on the BF/CS/n-HA composite membranes were studied, and the main purpose of the study was to explore the feasibility of preparing the new BF/CS/n-HA composite membrane by ionic crosslinking. Results revealed that the ionic crosslinking of carboxylated BF and CS played an essential role in fabricating BF/CS/n-HA composite membrane with higher mechanical properties, more suitable degradation and better bioactivity. The study proved that the carboxylated BF/CS/n-HA composite membrane fabricated by ionic crosslinking had a great potential in obtaining more satisfactory GBR membrane in contrast with the CS/n-HA and untreated BF/CS/n-HA composite membranes, which would open up a new application for natural BF in the biomedical membrane field.
机译:为了获得理想的引导骨组织再生(GBR)膜,设计羧化竹纤维(BF)通过离子交联将壳聚糖/纳米 - 羟基磷灰石(CS / N-HA)系统引入,以制造新的BF / CS / N-HA复合膜,具有不同的重量比。通过傅里叶变换红外光谱(FT-IR)研究了BF / CS / NA-HA三核复合膜的形成机制及BF不同内容物对BF / CS / N-HA复合膜的影响,X射线衍射(XRD),扫描电子显微镜(SEM),机电通用测试仪,模拟体液中的体外浸泡(SBF)。结果证明,Cs和修饰的BF是通过静电相互作用的离子交联,以形成三维聚电解质结构,同时通过氢键合在聚电解质结构中,确保改性的BF / CS / N-HA复合膜。与Cs / N-HA和未处理的BF / CS / NA-HA复合膜相比具有优异的拉伸强度。此外,改性的BF / CS / N-HA的重量比为2:6:2显示出最高的拉伸强度,其拉伸强度超过两倍提高到最多的Cs / N-HA复合膜的抗拉强度合适的比例。此外,在体外模拟体液浸泡结果表明,改性的BF / CS / N-HA复合膜呈现了不同的降解速率,并且可以通过研究体重减轻,吸水率,SEM形态观察和拉伸强度促进磷灰石。降低。所有结果表明,与Cs / N-HA和未处理的BF /未处理的BF /未处理的BF /未处理的BF /未处理的BF / CS / N-HA复合膜,具有良好的有希望获得更令人满意的GBR膜,此外,该研究将为生物医学膜领域的天然BF提供新的应用。图形摘要在该原稿中,设计用于将壳聚糖/纳米羟基磷灰石(Cs / N-HA)系统引入壳聚糖/纳米羟基磷灰石(CS / N-HA)体系中以制造具有不同重量比的新型BF / CS / N-HA复合膜。研究了BF / CS / NA-HA三元复合膜的形成机制及改性的BF不同内容物对BF / CS / N-HA复合膜的影响,并且该研究的主要目的是探讨可行性通过离子交联制备新的BF / CS / NA-HA复合膜。结果表明,羧基化的BF和CS的离子交联在制造具有更高机械性能的BF / CS / N-HA复合膜中起重要作用,更适合的降解和更好的生物活性。该研究证明,通过离子交联制造的羧化的BF / CS / N-HA复合膜具有巨大的潜力,与CS / N-HA和未处理的BF / CS / NA-HA复合膜相比,获得更令人满意的GBR膜。这将在生物医学膜领域开辟自然BF的新应用。

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