首页> 外文期刊>Biomacromolecules >Temperature-Responsive Polymersomes of Poly(3-methyl-N-vinylcaprolactam)-block-poly(N-vinylpyrrolidone) To Decrease Doxorubicin-Induced Cardiotoxicity
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Temperature-Responsive Polymersomes of Poly(3-methyl-N-vinylcaprolactam)-block-poly(N-vinylpyrrolidone) To Decrease Doxorubicin-Induced Cardiotoxicity

机译:聚(3-甲基-N-乙烯基己内酰胺) - 嵌段 - 聚(N-乙烯基吡咯烷酮)的温度响应聚合物,降低多柔比蛋白诱导的心脏毒性

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摘要

Despite being one of the most potent chemotherapeutics, doxorubicin (DOX) facilitates cardiac toxicity by irreversibly damaging the cardiac muscle as well as severely dysregulating the immune system and impairing the resolution of cardiac inflammation. Herein, we report synthesis and aqueous self-assembly of nanosized polymersomes from temperature-responsive poly(3-methyl-N-vinylcaprolactam)-b/ock-poly(N-vinylpyrrolidone) (PMVC-PVPON) diblock copolymers and demonstrate their potential to minimize DOX cardiotoxicity compared to liposomal DOX. RAFT polymerization of vinylpyrrolidone and 3-methyl-N-vinylcaprolactam, which are structurally similar monomers but have drastically different hydrophobicity, allows decreasing the cloud point of PMVCm-PVPONn copolymers below 20 degrees C. The lower critical solution temperature (LCST) of the PMVC58-PVPONn copolymer varied from 19.2 to 18.6 and to 15.2 degrees C by decreasing the length of the hydrophilic PVPONn block from n = 98 to n = 65 and to n = 20, respectively. The copolymers assembled into stable vesicles at room temperature when PVPON polymerization degrees were 65 and 98. Anticancer drug DOX was entrapped with high efficiency into the aqueous PMVC58-PVPON65 polymersomal core surrounded by the hydrophobic temperature-sensitive PMVC shell and the hydrophilic PVPON corona. Unlike many liposomal, micellar, or synthetic drug delivery systems, these polymersomes exhibit an exceptionally high loading capacity of DOX (49%) and encapsulation efficiency (95%) due to spontaneous loading of the drug at room temperature from aqueous DOX solution. We also show that C57BL/6J mice injected with the lethal dose of DOX at 15 mg kg(-1) did not survive the 14 day treatment, resulting in 100% mortality. The DOX-loaded PMVC58-PVPON65 polymersomes did not cause any mortality in mice indicating that they can be used for successful DOX encapsulation. The gravimetric analyses of the animal organs from mice treated with liposome-encapsulated DOX (Lipo-DOX) and PMVC58-PVPON65 polymersomes (Poly-DOX) revealed that the Lipo-DOX injection caused some toxicity manifesting as decreased body weight compared to Poly-DOX and saline control. Masses of the left ventricle of the heart, lung, and spleen reduced in the Lipo-DOX-treated mice compared to the nontoxic saline control, while no significant decrease of those masses was observed for the Poly-DOX-treated mice. Our results provide evidence for superior stability of synthetic polymersomes in vivo and show promise for the development of next-generation drug carriers with minimal side effects.
机译:尽管是最有效的化学治疗方法之一,但多柔比星(Dox)通过不可逆转地损害心肌促进心肌,并且严重致死免疫系统并损害心脏炎症的分辨率,促进心脏毒性。在此,我们将纳米型聚合物的合成和水性自组装从温度响应性聚(3-甲基-N-乙烯基碳氢酰胺)-b / ock-poly(n-乙烯基吡咯烷酮)(PMVC-PVPON)二嵌段共聚物(PMVC-PVPON)二嵌段共聚物报告并证明它们的潜力与脂质体DOX相比,最小化DOX心脏毒性。乙烯基吡咯烷酮和3-甲基-N-乙烯基己内酰胺的筏聚合,其是结构相似的单体但具有急剧不同的疏水性,允许减少20℃以下PMVCM-PVPPON共聚物的浊点。PMVC58的较低临界溶液温度(LCST) -Pvponn共聚物通过将来自n = 98至n = 65的亲水性PvPonn嵌段的长度和N = 20分别从19.2至18.6和15.2℃变化。当PVPON聚合度为65和98时,共聚物在室温下组装成稳定的囊泡。抗癌药物DOX以高效率捕获到由疏水温度敏感的PMVC壳和亲水PVPON电晕包围的水性PMVC58-PVPON65聚合物核心。与许多脂质体,胶束或合成药物递送系统不同,由于在室温下从DOX溶液室温下,这些聚合物表现出DOX(49%)和封装效率(95%)的高负载能力。我们还表明,在15毫克kg(-1)下注射致命剂量的dox的c57bl / 6j小鼠在14天治疗中没有存活,导致100%的死亡率。 DOX加载的PMVC58-PVPON65聚合物没有导致小鼠的任何死亡率,表明它们可用于成功的DOX封装。用脂质体 - 包封的DOX(Lipo-Dox)和PMVC58-PVPON65聚合物(Poly-Dox)处理的小鼠的动物器官的重量分析显示,与Poly-dox相比,Lipo-dox注射引起的毒性表现为减少体重减少和盐水控制。与无毒盐水对照相比,心脏,肺和脾脏的左心室的左心室,肺癌处理的小鼠减少,但对于多人处理的小鼠,观察到这些质量的显着降低。我们的结果提供了体内合成聚合物稳定性稳定性的证据,并显示了下一代药物载体的发展,副作用最小。

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  • 来源
    《Biomacromolecules》 |2019年第10期|共12页
  • 作者单位

    Univ Alabama Birmingham Dept Chem Birmingham AL 35294 USA;

    Univ Alabama Birmingham Dept Chem Birmingham AL 35294 USA;

    Univ Alabama Birmingham Dept Chem Birmingham AL 35294 USA;

    Univ Alabama Birmingham Dept Med Div Cardiovasc Dis Birmingham AL 35294 USA;

    Oak Ridge Natl Lab Neutron Sci Directorate Neutron Scattering Div Oak Ridge TN 37831 USA;

    Univ Alabama Birmingham Dept Med Div Cardiovasc Dis Birmingham AL 35294 USA;

    Oak Ridge Natl Lab Neutron Sci Directorate Neutron Scattering Div Oak Ridge TN 37831 USA;

    Univ Alabama Birmingham Dept Chem Birmingham AL 35294 USA;

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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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