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Reduction in the size of layered double hydroxide nanoparticles enhances the efficiency of siRNA delivery

机译:减小双层氢氧化物纳米颗粒的尺寸可提高siRNA的递送效率

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摘要

Small interfering RNAs (siRNAs) are a potentially powerful new class of pharmaceutical drugs for many disease. However, the delivery of unprotected siRNAs is ineffective due to their susceptibility to degradation by ubiquitous nucleases under physiological conditions. Layered double hydroxide nanoparticles (LDHs) have been found to be efficient carriers of anionic drugs and nucleic acids. Our previous research has shown that LDHs (with the Z-average particle size of approximately 110. nm) can mediate siRNA delivery in mammalian cells, resulting in gene silencing. However, short double-stranded nucleic acids are mostly adsorbed onto the external surface and not well protected by LDHs. In order to enhance the intercalation of siRNA into the LDH interlayer and the efficiency of subsequent siRNA delivery, we prepared smaller LDHs (with the Z-average particle size of approximately 45. nm) with an engineered non-aqueous method. We demonstrate here that dsDNA/siRNA is more effectively intercalated into these small LDH nanoparticles, more dsDNA/siRNA is transfected into HEK 293T cells, and more efficient silencing of the target gene is achieved using smaller LDHs. Thus, smaller LDH particles have greater potential as a delivery system for the application of RNA interference.
机译:小干扰RNA(siRNA)是治疗许多疾病的潜在强大的新型药物。但是,由于未保护的siRNA在生理条件下易于被普遍存在的核酸酶降解,因此递送是无效的。已发现层状双氢氧化物纳米颗粒(LDH)是阴离子药物和核酸的有效载体。我们以前的研究表明,LDH(Z平均粒径约为110.nm)可以介导siRNA在哺乳动物细胞中的传递,从而导致基因沉默。但是,短的双链核酸主要吸附在外表面,而不能被LDHs很好地保护。为了增强siRNA插入LDH中间层的能力以及后续siRNA传递的效率,我们采用工程化的非水方法制备了较小的LDH(Z平均粒径约为45.nm)。我们在这里证明了dsDNA / siRNA更有效地插入这些小的LDH纳米颗粒中,更多的dsDNA / siRNA被转染到HEK 293T细胞中,并且使用较小的LDH可以更有效地沉默靶基因。因此,较小的LDH颗粒作为RNA干扰应用的传递系统具有更大的潜力。

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