Key Laboratory of Sensing Technology and Biomedical Instrument of Guangdong Province, School of Biomedical Engineering, Sun Yat-sen University, Guangzhou 510006, PR China.
Department of Fiber Science and Apparel Design, Cornell University, Ithaca, NY 14853-4401, USA.
Acta Biomater. 2018 Jul 1;74:180-191. doi: 10.1016/j.actbio.2018.05.040. Epub 2018 May 25.
Many different types of polycations have been vigorously studied for nucleic acid delivery, but a systematical investigation of the structure-property relationships of polycations for nucleic acid delivery is still lacking. In this study, a new library of biodegradable and biocompatible arginine-based poly(ester amide) (Arg-PEA) biomaterials was designed and synthesized with a tunable structure for such a comprehensive structure-property research. Nanoparticle (NP) complexes were formed through the electrostatic interactions between the polycationic Arg-PEAs and anionic nucleic acids. The following structure effects of the Arg-PEAs on the transfection efficiency of nucleic acids were investigated: 1) the linker/spacer length (length effect and odd-even effect); 2) salt type of arginine; 3) the side chain; 4) chain stiffness; 5) molecular weight (MW). The data obtained revealed that a slight change in the Arg-PEA structure could finely tune its physicochemical property such as hydrophobicity, and this could subsequently affect the nanoparticle size and zeta potential, which, in turn, regulate the transfection efficiency and silencing outcomes. A further study of the Arg-PEA/CpG oligodeoxynucleotide NP complexes indicated that the polymer structure could precisily regulate the immune response of CpG, thus providing a new potential nano-immunotherapy strategy. The in vitro data have further confirmed that the Arg-PEA NPs showed a satisfactory delivery performance for a variety of nucleic acids. Therefore, the data from the current study provide comprehensive information about the Arg-PEA structure-transfection property relationship; the tunable property of the library of Arg-PEA biomaterials can be one of the promising candidates for nucleic acid delivery and other biomedical applications.
Polycations have being intensive utilized for nucleic acid delivery. However, there has not been elucidated about the relationship between polycation's structure and the physicochemical properties/biological function. In this timely report, an arginine based poly(ester amide) (Arg-PEA) library was prepared with finely tunable structure to systematically investigate the structure-property relationships of polycations for nucleic acid delivery. The results revealed that slight change of Arg-PEA structure could finely tune the physicochemical property (such as hydrophobicity), which subsequently affect the size and zeta potential of Arg-PEA/nucleic acid nanoparticles(NPs), and finally regulate the resulting transfection or silencing outcomes. Further study of Arg-PEA/CpG NPs indicated that the polymer structure could precisely regulate immuno response of CpG, providing new potential nano-immunotherapy strategy. In vitro evaluations confirmed that the NPs showed satisfied delivery performance for a variety types of nucleic acids. Therefore, these studies provide comprehensive information of Arg-PEA structure-property relationship, and the tunable properties of Arg-PEAs make them promising candidates for nucleic acid delivery and other biomedical applications. Overall, we have shown enough significance and novelty in terms of nucleic acid delivery, biomaterials, pharmaceutical science and nanomedicine.
许多不同类型的聚阳离子被广泛研究用于核酸传递,但对于聚阳离子用于核酸传递的结构-性质关系仍缺乏系统研究。在这项研究中,设计并合成了一种新的可生物降解和生物相容的精氨酸基聚(酯酰胺)(Arg-PEA)生物材料库,具有可调节的结构,可进行此类全面的结构-性质研究。通过阳离子 Arg-PEA 与阴离子核酸之间的静电相互作用形成纳米颗粒(NP)复合物。研究了 Arg-PEA 的以下结构效应对核酸转染效率的影响:1)连接子/间隔物长度(长度效应和奇偶效应);2)精氨酸的盐类型;3)侧链;4)链刚性;5)分子量(MW)。所得数据表明,Arg-PEA 结构的微小变化可以精细调节其物理化学性质,如疏水性,进而影响纳米颗粒的大小和 Zeta 电位,从而调节转染效率和沉默效果。对 Arg-PEA/CpG 寡脱氧核苷酸 NP 复合物的进一步研究表明,聚合物结构可以精确调节 CpG 的免疫反应,从而提供了一种新的潜在纳米免疫治疗策略。体外数据进一步证实,Arg-PEA NPs 对多种核酸具有令人满意的传递性能。因此,当前研究的数据提供了有关 Arg-PEA 结构-转染性质关系的全面信息;Arg-PEA 生物材料库的可调性质可以成为核酸传递和其他生物医学应用的有前途的候选物之一。
聚阳离子已被广泛用于核酸传递。然而,对于聚阳离子的结构与物理化学性质/生物学功能之间的关系,尚未阐明。在本及时报告中,制备了基于精氨酸的聚(酯酰胺)(Arg-PEA)文库,其结构可精细调节,以系统研究聚阳离子用于核酸传递的结构-性质关系。结果表明,Arg-PEA 结构的微小变化可以精细调节物理化学性质(如疏水性),进而影响 Arg-PEA/核酸纳米颗粒(NP)的大小和 Zeta 电位,最终调节转染或沉默效果。Arg-PEA/CpG NPs 的进一步研究表明,聚合物结构可以精确调节 CpG 的免疫反应,提供了新的潜在纳米免疫治疗策略。体外评估证实,这些 NPs 对多种类型的核酸表现出令人满意的递药性能。因此,这些研究提供了有关 Arg-PEA 结构-性质关系的全面信息,Arg-PEA 的可调性质使它们成为核酸传递和其他生物医学应用的有前途的候选物。总的来说,我们在核酸传递、生物材料、药物科学和纳米医学方面展示了足够的意义和新颖性。