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Design of Synthetic Polymer Nanoparticles Specifically Capturing Indole, a Small Toxic Molecule

机译:合成聚合物纳米粒子的设计,特别是吲哚,小毒性分子

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摘要

Synthetic polymers are of interest as stable and cost-effective biomolecule-affinity reagents, since these polymers interact with target biomolecules both in vitro and in the bloodstream. However, little has been reported about orally administered polymers capable of capturing a target molecule and inhibiting its intestinal absorption. Here, we describe the design of synthetic polymer nanoparticles (NPs) specifically capturing indole, a major factor exacerbating chronic kidney disease, in the intestine. N-isopropylacrylamide-based NPs were prepared with various hydrophobic monomers. The amounts of indole captured by NPs depended on the structures and feed ratios of the hydrophobic monomers and the polymer density but not on the particle size. The combination of hydrophobic and quadrupole interaction was effective to enhance the affinity and specificity of NPs for indole. The optimized NPs specifically inhibited intestinal absorption of orally administered indole in mice. These results showed the potential of synthetic polymer NPs for inhibiting the intestinal absorption of a target molecule.
机译:合成聚合物是稳定和经济高效的生物分子 - 亲和试剂的感兴趣,因为这些聚合物在体外和血液中与靶生物分子相互作用。然而,已经据报道了能够捕获靶分子并抑制其肠道吸收的口服给药的聚合物很少。在这里,我们描述了在肠道中描述了合成聚合物纳米颗粒(NPS)的设计,特别是加剧慢性肾病的主要因素。用各种疏水性单体制备基于异丙基丙烯酰胺基NPS。 NPS捕获的吲哚的量取决于疏水性单体的结构和进料量和聚合物密度,但不是颗粒尺寸。疏水性和四极相互作用的组合有效增强NPS用于吲哚的亲和力和特异性。优化的NPS特异性抑制小鼠口服吲哚的肠道吸收。这些结果表明,用于抑制靶分子的肠道吸收的合成聚合物NP的潜力。

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  • 来源
    《Biomacromolecules》 |2019年第4期|共11页
  • 作者单位

    Univ Shizuoka Grad Sch Pharmaceut Sci Dept Med Biochem Suruga Ku 52-1 Yada Shizuoka Shizuoka 4228526 Japan;

    Univ Shizuoka Grad Sch Pharmaceut Sci Dept Med Biochem Suruga Ku 52-1 Yada Shizuoka Shizuoka 4228526 Japan;

    Kyushu Univ Dept Chem Engn 744 Motooka Fukuoka Fukuoka 8190395 Japan;

    Univ Shizuoka Dept Synthet Organ Chem Grad Sch Pharmaceut Sci Suruga Ku 52-1 Yada Shizuoka Shizuoka 4228526 Japan;

    Univ Shizuoka Dept Synthet Organ Chem Grad Sch Pharmaceut Sci Suruga Ku 52-1 Yada Shizuoka Shizuoka 4228526 Japan;

    Univ Shizuoka Grad Sch Pharmaceut Sci Dept Med Biochem Suruga Ku 52-1 Yada Shizuoka Shizuoka 4228526 Japan;

    Univ Shizuoka Grad Sch Pharmaceut Sci Dept Med Biochem Suruga Ku 52-1 Yada Shizuoka Shizuoka 4228526 Japan;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分子生物学;
  • 关键词

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