Instituto de Investigaciones Químicas (IIQ), CSIC - Universidad de Sevilla, Avda. Américo Vespucio 49, 41092 Sevilla, Spain.
Department of Organic Chemistry, Faculty of Chemistry, University of Seville, c/Profesor García González 1, 41012 Sevilla, Spain.
Biomacromolecules. 2020 Dec 14;21(12):5173-5188. doi: 10.1021/acs.biomac.0c01283. Epub 2020 Oct 21.
The architectural perfection and multivalency of dendrimers have made them useful for biodelivery via peripheral functionalization and the adjustment of dendrimer generations. Modulation of the core-forming and internal matrix-forming structures offers virtually unlimited opportunities for further optimization, but only in a few cases this has been made compatible with strict diastereomeric purity over molecularly diverse series, low toxicity, and limited synthetic effort. Fully regular star polymers built on biocompatible macrocyclic platforms, such as hyperbranched cyclodextrins, offer advantages in terms of facile synthesis and flexible compositions, but core elaboration in terms of shape and function becomes problematic. Here we report the synthesis and characterization of star polymers consisting of functional trehalose-based macrocyclic cores (cyclotrehalans, CTs) and aminothiourea dendron arms, which can be efficiently synthesized from sequential click reactions of orthogonal monomers, display no cytotoxicity, and efficiently complex and deliver plasmid DNA in vitro and in vivo. When compared with some commercial cationic dendrimers or polymers, the new CT-scaffolded star polymers show better transfection efficiencies in several cell lines and structure-dependent cell selectivity patterns. Notably, the CT core could be predefined to exert Zn(II) complexing or molecular inclusion capabilities, which has been exploited to synergistically boost cell transfection by orders of magnitude and modulate the organ tropism in vivo.
树状聚合物的结构完美性和多价性使其通过外围官能化和调整树状聚合物的代数而可用于生物递药。核心形成和内部基质形成结构的调节为进一步优化提供了几乎无限的机会,但在少数情况下,这与分子多样性系列中的严格非对映体纯度、低毒性和有限的合成工作量兼容。基于生物相容性大环平台(如超支化环糊精)构建的全规整星形聚合物在合成方面具有优势,且组成灵活,但在形状和功能方面的核心设计变得成问题。在此,我们报告了由基于功能性海藻糖的大环核(环海藻糖,CT)和氨硫脲树枝状臂组成的星形聚合物的合成和表征,这些星形聚合物可通过正交单体的顺序点击反应高效合成,无细胞毒性,并能有效地在体外和体内复合和递送质粒 DNA。与一些商业阳离子树状聚合物或聚合物相比,新型 CT 支架星形聚合物在几种细胞系中显示出更好的转染效率和结构依赖性细胞选择性模式。值得注意的是,CT 核可预先设计为具有 Zn(II)络合或分子包合能力,这被利用来协同地将细胞转染效率提高几个数量级,并调节体内的器官趋向性。