School of Materials Science and Engineering, Nanyang Technological University, Singapore 639798.
Langmuir. 2013 Aug 27;29(34):10899-906. doi: 10.1021/la401858s. Epub 2013 Aug 7.
Biological materials offer a wide range of multifunctional and structural properties that are currently not achieved in synthetic materials. Herein we report on the synthesis and preparation of bioinspired organic/inorganic composites that mimic the key physicochemical features associated with the mechanical strengthening of both squid beaks and mussel thread coatings using chitosan as an initial template. While chitosan is a well-known biocompatible material, it suffers from key drawbacks that have limited its usage in a wider range of structural biomedical applications. First, its load-bearing capability in hydrated conditions remains poor, and second it completely dissolves at pH < 6, preventing its use in mild acidic microenvironments. In order to overcome these intrinsic limitations, a chitosan-based organic/inorganic biocomposite is prepared that mimics the interfacial chemistry of squid beaks and mussel thread coating. Chitosan was functionalized with catechol moieties in a highly controlled fashion and combined with superparamagnetic iron oxide (γ-Fe2O3) nanoparticles to give composites that represent a significant improvement in functionality of chitosan-based biomaterials. The inorganic/organic (γ-Fe2O3/catechol) interfaces are stabilized and strengthened by coordination bonding, resulting in hybrid composites with improved stability at high temperatures, physiological pH conditions, and acid/base conditions. The inclusion of superparamagnetic particles also makes the composites stimuli-responsive.
生物材料具有广泛的多功能和结构特性,而这些特性目前在合成材料中无法实现。在此,我们报告了仿生有机/无机复合材料的合成和制备,这些复合材料模拟了鱿鱼喙和贻贝线涂层的机械强化相关的关键物理化学特征,使用壳聚糖作为初始模板。虽然壳聚糖是一种众所周知的生物相容性材料,但它存在一些关键缺陷,限制了其在更广泛的结构生物医学应用中的使用。首先,其在水合条件下的承载能力仍然较差,其次,它在 pH 值<6 时完全溶解,这使其无法在温和的酸性微环境中使用。为了克服这些内在的局限性,我们制备了一种基于壳聚糖的有机/无机生物复合材料,模拟了鱿鱼喙和贻贝线涂层的界面化学。壳聚糖通过高度受控的方式与儿茶酚基团进行功能化,并与超顺磁性氧化铁(γ-Fe2O3)纳米颗粒结合,得到的复合材料在壳聚糖基生物材料的功能方面有了显著的提高。无机/有机(γ-Fe2O3/儿茶酚)界面通过配位键稳定和强化,使复合材料在高温、生理 pH 值条件和酸碱条件下具有更好的稳定性。超顺磁颗粒的加入也使复合材料具有刺激响应性。