Nakamura Noriko, Mochida Yuki, Toh Kazuko, Fukushima Shigeto, Anraku Yasutaka, Cabral Horacio
Department of Bioengineering, Graduate School of Engineering, The University of Tokyo, 7-3-1 Hongo, Bunkyo-ku, Tokyo 113-8656, Japan.
Innovation Center of NanoMedicine, Kawasaki Institute of Industrial Promotion, 3-25-14 Tonomachi, Kawasaki-ku, Kawasaki 210-0821, Japan.
Polymers (Basel). 2020 Dec 22;13(1):5. doi: 10.3390/polym13010005.
Self-assembled supramolecular structures based on polyion complex (PIC) formation between oppositely charged polymers are attracting much attention for developing drug delivery systems able to endure harsh in vivo environments. As controlling polymer complexation provides an opportunity for engineering the assemblies, an improved understanding of the PIC formation will allow constructing assemblies with enhanced structural and functional capabilities. Here, we focused on the influence of the mixing charge ratio between block aniomers and catiomers on the physicochemical characteristics and in vivo biological performance of the resulting PIC micelles (PIC/m). Our results showed that by changing the mixing charge ratio, the structural state of the core was altered despite the sizes of PIC/m remaining almost the same. These structural variations greatly affected the stability of the PIC/m in the bloodstream after intravenous injection and determined their biodistribution.
基于带相反电荷聚合物之间形成聚离子复合物(PIC)的自组装超分子结构,在开发能够耐受恶劣体内环境的药物递送系统方面正吸引着广泛关注。由于控制聚合物络合为组装体工程提供了机会,对PIC形成的深入理解将有助于构建具有增强结构和功能能力的组装体。在此,我们重点研究了嵌段阴离子聚合物和阳离子聚合物之间的混合电荷比对所得PIC胶束(PIC/m)的物理化学特性和体内生物学性能的影响。我们的结果表明,通过改变混合电荷比,尽管PIC/m的尺寸几乎保持不变,但核心的结构状态发生了改变。这些结构变化极大地影响了静脉注射后PIC/m在血流中的稳定性,并决定了它们的生物分布。