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Particle Tracking Analysis for the Intracellular Trafficking of Nanoparticles Modified with African Swine Fever Virus Protein p54-derived Peptide

机译:非洲猪瘟病毒蛋白p54衍生肽修饰的纳米粒子的细胞内贩运的粒子跟踪分析。

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摘要

Previous studies showed that the cytoplasmic transport of nanoparticles to the nucleus is driven by a vesicular sorting system. Artificial approaches for targeting a microtubule-associating motor complex is also a challenge. We describe herein the development of a liposomal nanoparticle, the surface of which is modified with stearylated octa-arginine (STR-R8), and a dynein light chain (LC8)-associated peptide derived from an African swine fever virus protein p54 (p54149-161) with polyethyleneglycol (PEG) as a spacer (p54149-161-PEG/R8-liposomal nanoparticles (LNPs)). The p54149-161-PEG/R8-LNPs preferentially gain access to the nucleus, resulting in a one- to two-order of magnitude higher transfection activity in comparison with p54149-161-free nanoparticles (PEG/R8-LNPs). Further studies of particle tracking in HeLa cells stably expressing green fluorescent protein (GFP)-tagged tubulin (GFP/Tub-HeLa) indicate that p54149-161 stimulated the transport of nanoparticles along fibrous tubulin structures. Moreover, a part of the p54149-161-PEG/R8-LNPs appeared to undergo quasi-straight transport without sharing the tracks corresponding to PKH67, the plasma membrane of which had been prestained with a marker just before transfection, while corresponding movement was never observed in the case of PEG/R8-LNPs. These findings suggest that a portion of the p54149-161-modified nanoparticles can use microtubule-dependent transport without the need for an assist by a vesicular sorting system.
机译:先前的研究表明,纳米颗粒向胞核的细胞质转运是由水泡分选系统驱动的。靶向微管相关运动复合物的人工方法也是一个挑战。我们在本文中描述了脂质体纳米颗粒的开发,该脂质体纳米颗粒的表面被硬脂酸八-精氨酸(STR-R8)和源自非洲猪瘟病毒蛋白p54(p54149-p)的与达因轻链(LC8)相关的肽修饰161),其中聚乙二醇(PEG)作为间隔基(p54149-161-PEG / R8-脂质体纳米颗粒(LNP))。与不含p54149-161的纳米颗粒(PEG / R8-LNPs)相比,p54149-161-PEG / R8-LNPs优先进入细胞核,导致转染活性高一到两个数量级。对稳定表达绿色荧光蛋白(GFP)标记的微管蛋白(GFP / Tub-HeLa)的HeLa细胞中的颗粒追踪的进一步研究表明,p54149-161刺激了纳米颗粒沿着纤维微管蛋白结构的运输。此外,p54149-161-PEG / R8-LNP的一部分似乎经历了准直运输,而没有共享对应于PKH67的轨道,PKH67的质膜在转染前就已用标记物预染过,而从未发生过相应的运动在PEG / R8-LNPs中观察到。这些发现表明,p54149-161修饰的纳米颗粒的一部分可以使用微管依赖性转运,而无需囊泡分选系统的协助。

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