Politecnico di Torino, Corso Duca degli Abruzzi 24, 10129 Torino, Italy.
Consiglio per la ricerca in agricoltura e l'analisi dell'economia agraria─Centro di Ricerca Viticoltura ed Enologia, via P. Micca 35, 14100 Asti, Italy.
Langmuir. 2021 Dec 28;37(51):14793-14804. doi: 10.1021/acs.langmuir.1c01930. Epub 2021 Dec 14.
Chitosan is known for its specific antibacterial mechanism and biodegradability, while polyphenols are known for their antioxidant and anti-inflammatory properties: coupling these properties on a surface for bone contact, such as hydroxyapatite, is of great interest. The system developed here allows the combination of hydroxyapatite, chitosan, and polyphenol properties in the same multifunctional biomaterial in order to modulate the host response after implantation. Crosslinked chitosan is used in this research to create a stable coating on hydroxyapatite, and then it is functionalized for a smart release of the polyphenols. The release is higher in inflammatory conditions and lower in physiological conditions. The properties of the coated and functionalized samples are characterized on the as-prepared samples and after the samples are immersed (for 24 h) in solutions, which simulate the inflammatory and physiological conditions. Characterization is performed in order to confirm the presence of polyphenols grafted within the chitosan coating, the stability of grafting as a function of pH, the morphology of the coating and distribution of polyphenols on the surface, and the redox reactivity and radical scavenging activity of the functionalized coating. All the results are in line with previous results, which show a successful coating with chitosan and functionalization with polyphenols. Moreover, the polyphenols have a different release kinetics that is faster in a simulated inflammatory environment compared to that in the physiological environment. Even after the release tests, a fraction of polyphenols are still bound on the surface, maintaining the antioxidant and radical scavenging activity for a longer time. An electrostatic bond occurs between the negative-charged polar groups of polyphenols (carboxyls and/or phenols) and the positive amide groups of the chitosan coating, and the substitution of the crosslinker by the polyphenols occurs during the functionalization process.
壳聚糖以其特定的抗菌机制和生物降解性而闻名,而多酚则以其抗氧化和抗炎特性而闻名:将这些特性结合在与骨接触的表面上,如羟基磷灰石,是非常有意义的。本研究开发的系统允许将羟基磷灰石、壳聚糖和多酚的特性结合在同一种多功能生物材料中,以调节植入后的宿主反应。在这项研究中,使用交联壳聚糖在羟基磷灰石上形成稳定的涂层,然后对其进行功能化,以实现多酚的智能释放。在炎症条件下释放更高,在生理条件下释放更低。对涂层和功能化样品的性能在制备好的样品和样品在模拟炎症和生理条件的溶液中浸泡 24 小时后进行了表征。进行表征是为了确认多酚接枝在壳聚糖涂层内的存在、接枝的稳定性随 pH 的变化、涂层的形态和多酚在表面上的分布,以及功能化涂层的氧化还原反应性和自由基清除活性。所有结果都与之前的结果一致,表明成功地用壳聚糖进行了涂层,并对多酚进行了功能化。此外,多酚的释放动力学在模拟炎症环境中比在生理环境中更快。即使在释放测试后,仍有一部分多酚结合在表面上,保持更长时间的抗氧化和自由基清除活性。多酚的带负电荷的极性基团(羧基和/或酚基)与壳聚糖涂层的带正电荷的酰胺基团之间发生静电键合,并且多酚在功能化过程中取代了交联剂。