电转移LNA/DNA低聚物的亚细胞时空分布。

Julie Orio, Elisabeth Bellard, Houda Baaziz, Chantal Pichon, Peter Mouritzen, Marie-Pierre Rols, Justin Teissié, Muriel Golzio, Sophie Chabot
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引用次数: 0

摘要

生物活性低和体内靶向递送效率低阻碍了RNA干扰(RNAi)疗法发挥其全部临床潜力。为了克服这些障碍,人们在开发新技术方面取得了进展,一方面优化了寡核苷酸的化学性质,另一方面实现了寡核苷酸的有效递送。在本报告中,我们利用电脉冲技术(EP)实现了化学修饰寡核苷酸的高效细胞递送:锁定的核酸(LNA)/DNA寡聚物。我们使用单细胞水平共聚焦荧光显微镜观察电转移菁5 (Cy5)标记的LNA/DNA低聚物的时空分布。我们观察到EP允许LNA/DNA低聚物的细胞摄取,使低聚物快速进入HeLa细胞的细胞质。在电转移后的几分钟内,Cy5-LNA/DNA低聚物从细胞质穿梭到细胞核,而在没有脉冲应用的情况下,没有检测到Cy5-LNA/DNA低聚物。然后我们观察到Cy5荧光的重新分布,随着时间的推移积累到细胞器中。为了进一步识别这些区室,我们使用HeLa GFP-Rab7细胞系来观察晚期内体、溶酶体或线粒体特异性标记物。我们的研究结果表明,EP技术可以绕过胞吞途径直接进入Cy5-LNA/DNA寡聚物的细胞质。然而,在没有脉冲应用的情况下,Cy5-LNA/DNA寡聚物能够通过内吞途径进入细胞。我们证明了EP是一种高效的基于na的寡核苷酸递送技术,通过避免内溶酶体区隔化提供了强大的优势,可以快速自由地进入细胞质和细胞核,在那里它们可以找到它们的目标。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Sub-cellular temporal and spatial distribution of electrotransferred LNA/DNA oligomer.

Sub-cellular temporal and spatial distribution of electrotransferred LNA/DNA oligomer.

Sub-cellular temporal and spatial distribution of electrotransferred LNA/DNA oligomer.

Sub-cellular temporal and spatial distribution of electrotransferred LNA/DNA oligomer.

Low biological activity and inefficient targeted delivery in vivo have hindered RNA interference (RNAi)-based therapy from realising its full clinical potential. To overcome these hurdles, progresses have been made to develop new technologies optimizing oligonucleotides chemistry on one hand and achieving its effective delivery on the other hand. In this report, we achieved, by using the electropulsation technique (EP), efficient cellular delivery of chemically-modified oligonucleotide: The locked nucleic acid (LNA)/DNA oligomer. We used single cell level confocal fluorescence microscopy to follow the spatial and temporal distribution of electrotransferred cyanine 5 (Cy5)-labeled LNA/DNA oligomer. We observed that EP allowed LNA/DNA oligomer cellular uptake providing the oligomer a rapid access to the cytoplasm of HeLa cells. Within a few minutes after electrotransfer, Cy5-LNA/DNA oligomers shuttle from cytoplasm to nucleus whereas in absence of pulses application, Cy5-LNA/DNA oligomers were not detected. We then observed a redistribution of the Cy5 fluorescence that accumulated over time into cytoplasmic organelles. To go further and to identify these compartments, we used the HeLa GFP-Rab7 cell line to visualise late endosomes, and lysosomal or mitochondrial specific markers. Our results showed that the EP technique allowed direct entry into the cytoplasm of the Cy5-LNA/DNA oligomer bypassing the endocytosic pathway. However, in absence of pulses application, Cy5-LNA/DNA oligomer were able to enter cells through the endocytosic pathway. We demonstrated that EP is an efficient technique for LNA-based oligonucleotides delivery offering strong advantages by avoiding the endolysosomal compartmentalization, giving a rapid and free access to the cytoplasm and the nucleus where they can find their targets.

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