Institut des Biomolécules Max Mousseron (IBMM), UMR 5247, Ecole Nationale Supérieure de Chimie de Montpellier, 8 Rue de l'Ecole Normale, 34296 Montpellier Cedex 5 (France), Fax: (+33) 467144353.
Chemistry. 2014 Nov 3;20(45):14705-14. doi: 10.1002/chem.201403695. Epub 2014 Sep 22.
The design of smart nonviral vectors for gene delivery is of prime importance for the successful implementation of gene therapies. In particular, degradable analogues of macromolecules represent promising targets as they would combine the multivalent presentation of multiple binding units that is necessary for achieving effective complexation of therapeutic oligonucleotides with the controlled degradation of the vector that would in turn trigger drug release. Toward this end, we have designed and synthesized hybrid polyacylhydrazone-based dynamic materials that combine bis-functionalized cationic monomers with ethylene oxide containing monomers. Polymer formation was characterized by (1) H and DOSY NMR spectroscopy and was found to take place at high concentration, whereas macrocycles were predominantly formed at low concentration. HPLC monitoring of solutions of these materials in aqueous buffers at pH values ranging from 5.0 to 7.0 revealed their acid-catalyzed degradation. An ethidium bromide displacement assay and gel electrophoresis clearly demonstrated that, despite being dynamic, these materials are capable of effectively complexing dsDNA in aqueous buffer and biological serum at N/P ratios comparable to polyethyleneimine polymers. The self-assembly of dynamic covalent polymers through the incorporation of a reversible covalent bond within their main chain is therefore a promising strategy for generating degradable materials that are capable of establishing multivalent interactions and effectively complexing dsDNA in biological media.
智能非病毒载体的设计对于基因治疗的成功实施至关重要。特别是,大分子的可降解类似物是很有前途的目标,因为它们将结合多价呈现多个结合单元,这是实现治疗性寡核苷酸与载体的有效复合所必需的,而载体的受控降解将触发药物释放。为此,我们设计并合成了基于混合聚酰腙的动态材料,将双官能化阳离子单体与含有环氧乙烷的单体结合在一起。聚合物的形成通过 (1) H 和 DOSY NMR 光谱进行了表征,并发现其在高浓度下发生,而大环主要在低浓度下形成。在 pH 值为 5.0 至 7.0 的水性缓冲液中对这些材料溶液的 HPLC 监测表明它们具有酸催化降解性。溴化乙锭置换实验和凝胶电泳清楚地表明,尽管这些材料是动态的,但它们能够在与聚乙烯亚胺聚合物相当的 N/P 比下,在水性缓冲液和生物血清中有效复合 dsDNA。因此,通过在其主链中引入可逆共价键来进行动态共价聚合物的自组装是一种很有前途的策略,可用于生成能够建立多价相互作用并在生物介质中有效复合 dsDNA 的可降解材料。