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反义寡核苷酸对B淋巴细胞中爱泼斯坦-巴尔病毒LMP1基因表达的抑制作用:基于脂质和受体介导的递送系统的摄取及效果

Inhibition of Epstein Barr Virus LMP1 gene expression in B lymphocytes by antisense oligonucleotides: uptake and efficacy of lipid-based and receptor-mediated delivery systems.

作者信息

Galletti Roberta, Masciarelli Silvia, Conti Cinzia, Matusali Giulia, Di Renzo Livia, Meschini Stefania, Arancia Giuseppe, Mancini Carlo, Mattia Elena

机构信息

Department of Public Health Sciences, University "La Sapienza", P. le A. Moro 5, 00185 Rome, Italy.

出版信息

Antiviral Res. 2007 May;74(2):102-10. doi: 10.1016/j.antiviral.2006.09.001. Epub 2006 Sep 25.

Abstract

Epstein Barr Virus (EBV), is associated with an increasing number of lymphoid and epithelial malignancies. Among the genes expressed by EBV during latency, LMP1 plays a key role for growth transformation and immortalization of B lymphocytes. We have previously shown that antisense oligonucleotides (ONs) directed to LMP1 mRNA, effectively suppressed LMP1 gene expression and substantially reduced proliferation of the infected cells. The use of antisense phosphodiester oligonucleotides as therapeutic agents is limited by inefficient cellular uptake and intracellular transport to the target mRNA. We tested the ability of three cationic carriers internalized by different pathways, to increase the delivery of anti-LMP1-ON to their site of action in EBV-infected B lymphocytes. We report here that liposomes, dendrimers or transferrin-polylysine-conjugated ON were internalized by the cells at an extent several fold higher than that of the naked oligomers. However, only the delivery system exploiting the transferrin receptor pathway of internalization, was able to vectorize biologically active antisense LMP1-ON.

摘要

爱泼斯坦-巴尔病毒(EBV)与越来越多的淋巴和上皮恶性肿瘤相关。在EBV潜伏期间表达的基因中,LMP1在B淋巴细胞的生长转化和永生化中起关键作用。我们之前已经表明,针对LMP1 mRNA的反义寡核苷酸(ONs)能有效抑制LMP1基因表达,并显著降低受感染细胞的增殖。反义磷酸二酯寡核苷酸作为治疗剂的应用受到细胞摄取效率低下以及向靶mRNA的细胞内转运受限的限制。我们测试了三种通过不同途径内化的阳离子载体,增加抗LMP1-ON向EBV感染的B淋巴细胞中其作用位点递送的能力。我们在此报告,脂质体、树枝状聚合物或转铁蛋白-聚赖氨酸偶联的ON被细胞内化的程度比裸露的寡聚物高几倍。然而,只有利用内化的转铁蛋白受体途径的递送系统能够将具有生物活性的反义LMP1-ON进行载体化。

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