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Rifampicin Nanoformulation Enhances Treatment of Tuberculosis in Zebrafish

机译:利福平纳米型纳米纤维素增强了斑马鱼结核病的治疗

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摘要

Mycobacterium tuberculosis, the etiologic agent of tuberculosis, is an intracellular pathogen of alveolar macrophages. These cells avidly take up nanoparticles, even without the use of specific targeting ligands, making the use of nanotherapeutics ideal for the treatment of such infections. Methoxy poly(ethylene oxide)-block-poly(epsilon-caprolactone) nanoparticles of several different polymer blocks' molecular weights and sizes (20-110 nm) were developed and critically compared as carriers for rifampicin, a cornerstone in tuberculosis therapy. The polymeric nanoparticles' uptake, consequent organelle targeting and intracellular degradation were shown to be highly dependent on the nanoparticles' physicochemical properties (the cell uptake half-lives 2.4-21 min, the degradation half-lives 51.6, min-ca. 20 h after the internalization). We show that the nanoparticles are efficiently taken up by macrophages and are able to effectively neutralize the persisting bacilli. Finally, we demonstrate, using a zebrafish model of tuberculosis, that the nanoparticles are well tolerated, have a curative effect, and are significantly more efficient compared to a free form of rifampicin. Hence, these findings demonstrate that this system shows great promise, both in vitro and in vivo, for the treatment of tuberculosis.
机译:结核分枝杆菌,结核病的病因型剂,是肺泡巨噬细胞的细胞内病原体。这些细胞刚刚占用纳米颗粒,即使不使用特异性靶向配体,也可以使用纳米治疗方法来治疗这种感染。将甲氧基聚(环氧乙烷) - 甲基聚(ε-己内酯)纳米颗粒的几种不同的聚合物嵌段的分子量和尺寸(20-110nm)被开发,并且作为利福平治疗的基石携带的载体和批判性。将聚合物纳米颗粒的摄取,随之而来的细胞器靶向和细胞内降解显着依赖于纳米颗粒的物理化学性质(细胞摄取半衰期2.4-21分钟,降解半衰期51.6,Min-Ca。20 H之后内化)。我们表明纳米颗粒被巨噬细胞有效占据,并且能够有效地中和持续的杆菌。最后,我们用斑马鱼模型向Zebrafish模型进行说明,纳米颗粒具有良好的耐受性,具有疗效,与Rifampicin的游离形式相比显着更有效。因此,这些研究结果表明,该系统在体外和体内显示出巨大的希望,用于治疗结核病。

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  • 来源
    《Biomacromolecules》 |2019年第4期|共18页
  • 作者单位

    Czech Acad Sci Inst Macromol Chem Heyrovskeho Namesti 2 Prague 16200 6 Czech Republic;

    Charles Univ Prague Fac Med 1 Inst Biol &

    Med Genet Albertov 4 Prague 12800 2 Czech Republic;

    Univ Oslo Dept Biosci Blindernveien 31 N-0371 Oslo Norway;

    Slovak Acad Sci Inst Expt Phys Watsonova 47 Kosice 04001 Slovakia;

    Czech Acad Sci Inst Macromol Chem Heyrovskeho Namesti 2 Prague 16200 6 Czech Republic;

    Czech Acad Sci Inst Macromol Chem Heyrovskeho Namesti 2 Prague 16200 6 Czech Republic;

    Charles Univ Prague Fac Med 2 Dept Med Microbiol V Uvalu 84 Prague 15006 5 Czech Republic;

    Charles Univ Prague Fac Med 1 Inst Biol &

    Med Genet Albertov 4 Prague 12800 2 Czech Republic;

    Mil Med Agcy Mil Hlth Inst Ctr Biol Def Techonin 56166 Czech Republic;

    Mil Med Agcy Mil Hlth Inst Ctr Biol Def Techonin 56166 Czech Republic;

    Czech Acad Sci Inst Macromol Chem Heyrovskeho Namesti 2 Prague 16200 6 Czech Republic;

    Slovak Acad Sci Inst Expt Phys Watsonova 47 Kosice 04001 Slovakia;

    Univ Oslo Dept Biosci Blindernveien 31 N-0371 Oslo Norway;

    Charles Univ Prague Fac Med 1 Inst Biol &

    Med Genet Albertov 4 Prague 12800 2 Czech Republic;

    Czech Acad Sci Inst Macromol Chem Heyrovskeho Namesti 2 Prague 16200 6 Czech Republic;

    Czech Acad Sci Inst Macromol Chem Heyrovskeho Namesti 2 Prague 16200 6 Czech Republic;

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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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