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首页> 外文期刊>ACS nano >Niemann-Pick C1 Affects the Gene Delivery Efficacy of Degradable Polymeric Nanoparticles
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Niemann-Pick C1 Affects the Gene Delivery Efficacy of Degradable Polymeric Nanoparticles

机译:Niemann-Pick C1影响可降解聚合物纳米粒子的基因传递效率。

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Despite intensive research effort, the rational design of improved nanoparticulate drug carriers remains challenging, in part due to a limited understanding of the determinants of nanoparticle entry and transport in target cells. Recent studies have shown that Niemann-Pick C1 (NPC1), the lysosome membrane protein that mediates trafficking of cholesterol in cells, is involved in the endosomal escape and subsequent infection caused by filoviruses, and that its absence promotes the retention and efficacy of lipid nanoparticles encapsulating siRNA. Here, we report that NPC1 deficiency results in dramatic reduction in internalization and transfection efficiency mediated by degradable cationic gene delivery polymers, poly(β-amino ester)s (PBAEs). PBAEs utilized cholesterol and dynamin-dependent endocytosis pathways, and these were found to be heavily compromised in NPC1-deficient cells. In contrast, the absence of NPC1 had minor effects on DNA uptake mediated by polyethylenimine or Lipofectamine 2000. Strikingly, stable overexpression of human NPC1 in chinese hamster ovary cells was associated with enhanced gene uptake (3-fold) and transfection (10-fold) by PBAEs. These findings reveal a role of NPC1 in the regulation of endocytic mechanisms affecting nanoparticle trafficking. We hypothesize that in-depth understanding sites of entry and endosomal escape may lead to highly efficient nanotechnologies for drug delivery.
机译:尽管进行了深入的研究,但改进的纳米颗粒药物载体的合理设计仍然具有挑战性,部分原因是对靶细胞中纳米颗粒进入和运输的决定因素的了解有限。最近的研究表明,介导胆固醇在细胞内运输的溶酶体膜蛋白Niemann-Pick C1(NPC1)参与了内体逃逸和随后由丝状病毒引起的感染,并且其缺失会促进脂质纳米颗粒的保留和功效封装siR​​NA。在这里,我们报道NPC1缺乏导致可降解的阳离子基因传递聚合物,聚(β-氨基酯)(PBAEs)介导的内在化和转染效率显着降低。 PBAEs利用胆固醇和动力蛋白依赖的内吞途径,并且发现这些在NPC1缺陷细胞中严重受损。相反,不存在NPC1对聚乙烯亚胺或Lipofectamine 2000介导的DNA摄取影响较小。令人惊讶的是,中国仓鼠卵巢细胞中人NPC1的稳定过表达与基因摄取增强(3倍)和转染(10倍)有关。由PBAE。这些发现揭示了NPC1在调节影响纳米颗粒运输的内吞机制中的作用。我们假设深入了解进入和内体逃逸的位点可能会导致高效的纳米技术用于药物输送。

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