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Construction and Biological Evaluation of a Novel Integrin ανβ3-Specific Carrier for Targeted siRNA Delivery In Vitro

机译:新型整合素ανβ3特异性靶向siRNA体外载体的构建及生物学评价

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(1) Background: The great potential of RNA interference (RNAi)-based gene therapy is premised on the effective delivery of small interfering RNAs (siRNAs) to target tissues and cells. Hence, we aimed at developing and examining a novel integrin αvβ3-specific delivery carrier for targeted transfection of siRNA to malignant tumor cells; (2) Methods: Arginine-glycine-aspartate motif (RGD) was adopted as a tissue target for specific recognition of integrin αvβ3. To enable siRNA binding, a chimeric peptide was synthesized by adding nonamer arginine residues (9R) at the carboxy terminus of cyclic-RGD dimer, designated as c(RGD)2-9R. The efficiency of 9R peptide transferring siRNA was biologically evaluated in vitro by flow cytometry, confocal microscopy, and Western blot; (3) Results: An optimal 10:1 molar ratio of c(RGD)2-9R to siRNA was confirmed by the electrophoresis on agarose gels. Both the flow cytometry and confocal microscopy results testified that transfection of c(RGD)2-9R as an siRNA delivery carrier was obviously higher than the naked-siRNA group. The results of Western blot demonstrated that these 9R peptides were able to transduce siRNA to HepG2 cells in vitro, resulting in efficient gene silencing; and (4) Conclusion: The chimeric peptide of c(RGD)2-9R can be developed as an effective siRNA delivery carrier and shows potential as a new strategy for RNAi-based gene therapy. View Full-Text
机译:(1)背景:基于RNA干扰(RNAi)的基因治疗的巨大潜力是建立在有效地将小干扰RNA(siRNA)传递至目标组织和细胞的前提下的。因此,我们旨在开发和研究一种新型的整联蛋白αvβ3特异性递送载体,用于将siRNA靶向转染至恶性肿瘤细胞。 (2)方法:采用精氨酸-甘氨酸-天冬氨酸基序(RGD)作为特异性识别整联蛋白αvβ3的组织靶标。为了使siRNA结合,通过在环状RGD二聚体的羧基末端(称为c(RGD)2-9R)上添加九聚精氨酸残基(9R)来合成嵌合肽。 9R肽转移siRNA的效率在体外通过流式细胞仪,共聚焦显微镜和Western印迹进行了生物学评估。 (3)结果:通过在琼脂糖凝胶上的电泳确认了c(RGD)2-9R与siRNA的最佳10:1摩尔比。流式细胞术和共聚焦显微镜结果均证明,转染c(RGD)2-9R作为siRNA传递载体明显高于裸siRNA组。蛋白质印迹的结果表明,这些9R肽能够在体外将siRNA转导至HepG2细胞,从而实现有效的基因沉默。 (4)结论:c(RGD)2-9R的嵌合肽可作为一种有效的siRNA传递载体而开发,并有望成为基于RNAi的基因治疗的新策略。查看全文

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