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首页> 外文期刊>Bioconjugate Chemistry >Systemic Delivery of Folate-PEG siRNA Lipopolyplexes with Enhanced Intracellular Stability for In Vivo Gene Silencing in Leukemia
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Systemic Delivery of Folate-PEG siRNA Lipopolyplexes with Enhanced Intracellular Stability for In Vivo Gene Silencing in Leukemia

机译:具有增强的白血病体内基因沉默的细胞内稳定性的叶酸-PEG siRNA脂多贯复合的全身递送

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摘要

Protection of small interfering RNA (siRNA) against degradation and targeted delivery across the plasma and endosomal membranes to the final site of RNA interference (RNAi) are major aims for the development of siRNA therapeutics. Targeting for folate receptor (FR) expressing tumors, we optimized siRNA polyplexes by coformulating a folate-PEG-oligoaminoamide (for surface shielding and targeting) with one of three lipo-oligoaminoamides (optionally tyrosine-modified, for optimizing stability and size) to generate, similar to 100 nm targeted lipopolyplexes (TLPs), which self-stabilize by cysteine disulfide cross-links. To better understand parameters for improved tumor-directed gene silencing, we analyzed intracellular distribution and siRNA release kinetics. FR-mediated endocytosis and endosomal escape of TLPs was confirmed by immuno-TEM. We monitored colocalization of TLPs with endosomes and lysosomes, and onset of siRNA release by time-lapse confocal microscopy; analyzed intracellular stability by FRET using double-labeled siRNA; and correlated results with knockdown of eGFPLuc protein and EG5 mRNA expression. The most potent formulation, TLP1, containing lipopolyplex-stabilizing tyrosine trimers, was found to unpack siRNA in sustained manner with up to 5-fold higher intracellular siRNA stability after 4 h compared to other TLPs. Unexpectedly, data indicated that intracellular siRNA stability instead of an early endosomal exit dominate as a deciding factor for silencing efficiency of TLPs. After i.v. administration in a subcutaneous leukemia mouse model, TLP1 exhibited ligand-dependent tumoral siRNA retention, resulting in 65% EGS gene silencing at mRNA level without detectable adverse effects. In sum, tyrosine-modified TLP1 conveys superior protection of siRNA for an effective tumor-targeted delivery and RNAi in vivo.
机译:将小干扰RNA(siRNA)免受血浆和内体膜的降解和靶向递送到RNA干扰的最终部位(RNAi)是SiRNA治疗剂的主要目的。靶向表达肿瘤的叶酸受体(FR),通过将叶酸 - PEG-寡聚酰胺(用于表面屏蔽和靶向)用三种脂质 - 寡烷基酰胺(任选的酪氨酸改性,优化稳定性和尺寸)中的一种,优化了SiRNA多用途。 ,类似于100nM靶向脂多贯的分布(TLP),其通过半胱氨酸二硫键交联自稳定。为了更好地了解改善肿瘤定向基因沉默的参数,我们分析了细胞内分布和siRNA释放动力学。通过免疫TEM确认TLP的FR介导的内吞作用和内体逸出。我们监测了TLP的含有内体和溶酶体的分致化,并通过延时共聚焦显微镜发作siRNA释放;使用双标记的siRNA分析FRET的细胞内稳定性;与EGFPLUC蛋白和EG5 mRNA表达的敲低相关结果。含有脂多聚合物稳定酪氨酸三聚体的最有效的制剂TLP1,发现与其他TLP相比,4小时后,以持续的方式持续持续加上siRNA。出乎意料地,数据表明,细胞内siRNA稳定性代替早期内骨肉出口占主导地位,作为TLP沉默效率的决定性因素。在I.V之后。在皮下白血病小鼠模型中施用TLP1表现出配体依赖性肿瘤siRNA保留,导致65%Egs基因在mRNA水平下沉默而不会检测到的不良反应。总而言之,酪氨酸改性的TLP1传达了SiRNA的优异保护,以获得有效的肿瘤靶向递送和体内RNAi。

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  • 来源
    《Bioconjugate Chemistry》 |2017年第9期|共17页
  • 作者单位

    Ludwig Maximilians Univ Munchen Dept Pharm Butenandtstr 5-13 D-81377 Munich Germany;

    Ludwig Maximilians Univ Munchen Dept Pharm Butenandtstr 5-13 D-81377 Munich Germany;

    Ludwig Maximilians Univ Munchen Dept Pharm Butenandtstr 5-13 D-81377 Munich Germany;

    Inst Ind Promot Kawasaki Innovat Ctr NanoMed iCONM Kawasaki Ku 3-25-14 Tonomachi Kawasaki Kanagawa 2100821 Japan;

    Univ Tokyo Grad Sch Engn Dept Bioengn Bunkyo Ku 7-3-1 Hongo Tokyo 1138656 Japan;

    Univ Tartu Inst Mol &

    Cell Biol 23 Riia Str EE-51010 Tartu Estonia;

    Taipei Med Univ Coll Pharm Sch Pharm 250 Wuxin St Taipei 11031 Taiwan;

    Ludwig Maximilians Univ Munchen Fac Phys Geschwister Scholl Pl 1 D-80539 Munich Germany;

    Inst Ind Promot Kawasaki Innovat Ctr NanoMed iCONM Kawasaki Ku 3-25-14 Tonomachi Kawasaki Kanagawa 2100821 Japan;

    NIM Schellingstr 4 D-80799 Munich Germany;

    Univ Tartu Inst Mol &

    Cell Biol 23 Riia Str EE-51010 Tartu Estonia;

    Taipei Med Univ Coll Pharm Sch Pharm 250 Wuxin St Taipei 11031 Taiwan;

    Inst Ind Promot Kawasaki Innovat Ctr NanoMed iCONM Kawasaki Ku 3-25-14 Tonomachi Kawasaki Kanagawa 2100821 Japan;

    Ludwig Maximilians Univ Munchen Dept Pharm Butenandtstr 5-13 D-81377 Munich Germany;

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  • 正文语种 eng
  • 中图分类 生物化学;
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