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Tunable drug-loading capability of chitosan hydrogels with varied network architectures

机译:不同网络架构的壳聚糖水凝胶的可调谐药物装载能力

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摘要

Advanced bioactive systems with defined macroscopic properties and spatio-temporal sequestration of extracellular biomacromolecules are highly desirable for next generation therapeutics. Here, chitosan (CT) hydrogels were prepared with neutral or negatively charged cross-linkers in order to promote selective electrostatic complexation with charged drugs. CT was functionalized with varied dicarboxylic acids, such as tartaric acid, poly(ethylene glycol) bis(carboxymethyl) ether, 1,4-phenylenediacetic acid and 5-sulfoisophthalic acid monosodium salt (PhS), whereby PhS was hypothesized to act as a simple mimetic of heparin. Attenuated total reflectance Fourier transform infrared spectroscopy showed the presence of Cdouble bond; length as m-dashO amide I, N–H amide II and Cdouble bond; length as m-dashO ester bands, providing evidence of covalent network formation. The cross-linker content was reversely quantified by proton nuclear magnetic resonance on partially degraded network oligomers, so that 18 mol.% PhS was exemplarily determined. Swellability (SR: 299 ± 65–1054 ± 121 wt.%), compressibility (E: 2.1 ± 0.9–9.2 ± 2.3 kPa), material morphology and drug-loading capability were successfully adjusted based on the selected network architecture. Here, hydrogel incubation with model drugs of varied electrostatic charge, i.e. allura red (AR, doubly negatively charged), methyl orange (MO, negatively charged) or methylene blue (MB, positively charged), resulted in direct hydrogel–dye electrostatic complexation. Importantly, the cationic compound, MB, showed different incorporation behaviours, depending on the electrostatic character of the selected cross-linker. In light of this tunable drug-loading capability, these CT hydrogels would be highly attractive as drug reservoirs towards e.g. the fabrication of tissue models in vitro.
机译:具有下一代的治疗方法非常需要具有定义的宏观特性和时空隔离细胞外生物大分子的先进生物活性系统。在这里,壳聚糖(CT)水凝胶是用中性或带负电荷的交联剂制备的,以促进与带电药物的选择性静电络合。用各种二元羧酸(如酒石酸,聚乙二醇双(羧甲基)醚,1,4-苯二乙酸和5-磺基间苯二甲酸一钠盐(PhS))对CT进行功能化,据推测,PhS的作用很简单模仿肝素。衰减的全反射傅立叶变换红外光谱表明存在Cdouble键;长度为m-dashO酰胺I,NH酰胺II和C双键;长度为m-dashO酯带,提供共价网络形成的证据。通过质子核磁共振在部分降解的网络低聚物上对交联剂含量进行反向定量,从而示例性地确定了18mol。%的PhS。溶胀度(SR:299±65–1054±121 wt。%),可压缩性(E:2.1±0.9–9.2±2.3 kPa),材料形态和载药量已根据所选的网络架构成功调整。在这里,水凝胶与各种带静电电荷的模型药物一起孵育,例如,诱惑红(AR,双负电荷),甲基橙(MO,带负电荷)或亚甲基蓝(MB,带正电荷),导致直接的水凝胶-染料静电络合。重要的是,取决于所选交联剂的静电特性,阳离子化合物MB表现出不同的掺入行为。鉴于这种可调节的药物装载能力,这些CT水凝胶作为药物储库将朝着例如图1所示的方向高度吸引。体外组织模型的制作。

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