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Regioselective thioacetylation of chitosan end-groups for nanoparticle gene delivery systems

机译:壳聚糖端基的区域选择性硫乙酰化用于纳米粒子基因传递系统

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摘要

Chitosan (CS) end-group chemistry is a conjugation strategy that has been minimally exploited in the literature to date. Although the open-chain form of the CS reducing extremity bears a reactive aldehyde moiety, the most common method to generate a reactive end-group on CS is nitrous acid depolymerization, which produces a 2,5-anhydro-d-mannose unit (M-Unit) bearing also an aldehyde moiety. However, the availability of the latter might be low, since previous literature suggests that its hydrated and non-reactive form, namely the gem-diol form, is predominant in acidic aqueous conditions. Oxime-click chemistry has been used to react on such aldehydes with various degrees of success, but the use of a co-solvent and additional chemical reagents remain necessary to obtain the desired and stable covalent linkage. In this study, we have assessed the availability of the aldehyde reactive form on chitosan treated with nitrous acid. We have also assessed its reactivity towards thiol-bearing molecules in acidic conditions where CS amino groups are fully protonated and thus unreactive towards aldehyde. LC-MS and NMR spectroscopy methods (1H and DOSY, respectively) confirmed the regioselective thioacetylation of the reactive aldehyde with conversion rates between 55 and 70% depending on the thiol molecule engaged. The stabilization of the hemithioacetal intermediates into the corresponding thioacetals was also found to be facilitated upon freeze-drying of the reaction medium. The PEGylation of the CS M-Unit aldehyde by thioacetylation was also performed as a direct application of the proposed conjugation approach. CS-b-PEG2 block copolymers were successfully synthesized and were used to prepare block ionomer complexes with plasmid DNA, as revealed by their spherical morphology vs. the rod-like/globular/toroidal morphology observed for polyplexes prepared using native unmodified chitosan. This novel aqueous thiol-based conjugation strategy constitutes an alternative to the oxime-click pathway; it could be applicable to other polymers.
机译:壳聚糖(CS)端基化学是一种共轭策略,迄今为止在文献中仅得到了很少的利用。尽管CS还原末端的开链形式带有反应性醛基部分,但在CS上产生反应性端基的最常见方法是亚硝酸解聚反应,产生2,5-脱水-d-甘露糖单元(M -单元)还带有醛部分。然而,后者的可用性可能较低,因为先前的文献表明其水合且非反应性的形式,即宝石二醇形式,在酸性水性条件下占主导地位。肟点击化学已被用于在各种醛上与这类醛反应,但是获得所需和稳定的共价键合仍然需要使用助溶剂和其他化学试剂。在这项研究中,我们评估了用亚硝酸处理的壳聚糖上醛反应性形式的可用性。我们还评估了它在CS氨基被完全质子化从而对醛不反应的酸性条件下对含硫醇分子的反应性。 LC-MS和NMR光谱法(分别是 1 H和DOSY)证实了反应性醛的区域选择性硫乙酰化,其转化率在55%到70%之间,具体取决于所结合的硫醇分子。还发现反应介质的冷冻干燥有助于将半硫缩醛中间体稳定成相应的硫缩醛。 CS M-单元醛通过硫代乙酰化的聚乙二醇化反应也作为所提出的偶联方法的直接应用而进行。 CS-b-PEG2嵌段共聚物已成功合成,并用于制备带有质粒DNA的嵌段离聚物复合物,这是通过球形观察到与使用天然未修饰壳聚糖制备的复合物所观察到的棒状/球形/环形相似的。这种新颖的基于硫醇的水结合策略构成了肟点击途径的替代方法。它可能适用于其他聚合物。

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