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siRNA delivery from triblock copolymer micelles with spatially-ordered compartments of PEG shell, siRNA-loaded intermediate layer, and hydrophobic core.

机译:从具有PEG壳,装载siRNA的中间层和疏水核的空间有序隔室的三嵌段共聚物胶束传递siRNA。

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Hydrophobized block copolymers have widely been developed for construction of polymeric micelles for stable delivery of nucleic acids as well as anticancer drugs. Herein, we elaborated an A-B-C type of triblock copolymer featuring shell-forming A-segment, nucleic acid-loading B-segment, and stable core-forming C-segment, directed toward construction of a three-layered polymeric micelle as a small interfering RNA (siRNA) vehicle. The triblock copolymer was prepared with nonionic and hydrophilic poly(ethylene glycol) (PEG), cationic poly(l-lysine) (PLys), and poly{N-[N-(2-aminoethyl)-2-aminoethyl]aspartamide} [PAsp(DET)] bearing a hydrophobic dimethoxy nitrobenzyl ester (DN) moiety in the side chain [PEG-PLys-PAsp(DET-DN)]. The resulting triblock copolymers spontaneously formed sub-100?nm-sized polymeric micelles with a hydrophobic PAsp(DET-DN) core as well as PEG shell in an aqueous solution. This micelle was able to incorporate siRNA into the intermediate PLys layer, associated with slightly reduced size and a narrow size distribution. The triblock copolymer micelles (TCMs) stably encapsulated siRNA in serum-containing medium, whereas randomly hydrophobized triblock copolymer [PEG-PLys(DN)-PAsp(DET-DN)] control micelles (RCMs) gradually released siRNA with time and non-PEGylated diblock copolymer [PLys-PAsp(DET-DN)] control micelles (DCMs) immediately formed large aggregates. The TCMs thus induced appreciably stronger sequence-specific gene silencing in cultured cancer cells, compared to those control micelles. The siRNA delivery with TCMs was further examined in terms of cellular uptake and intracellular trafficking. The flow cytometric analysis revealed that the cellular uptake of TCMs was more efficient than that of RCMs, but less efficient than that of DCMs. The intracellular trafficking study using confocal laser scanning microscopy combined with fluorescence resonance energy transfer (FRET) revealed that the TCMs could readily release the siRNA payload within cells, which was in contrast to the DCMs exhibiting much slower release profile. This result indicates that PEG shell contributed to the smooth release of siRNA from TCMs within the cells, presumably due to avoiding irreversible aggregate formation. The obtained results demonstrated that the design of separately functionalized polymer segments expanded the performance of polymeric micelles for successful siRNA delivery.
机译:疏水化嵌段共聚物已被广泛开发用于构建聚合物胶束,以稳定地递送核酸以及抗癌药物。本文中,我们详细介绍了一种ABC型三嵌段共聚物,其特征是形成壳的A段,加载核酸的B段和稳定的形成核的C段,旨在构建三层聚合物胶束作为小分子干扰RNA。 (siRNA)载体。该三嵌段共聚物由非离子和亲水性聚乙二醇(PEG),阳离子聚(1-赖氨酸)(PLys)和聚{N- [N-(2-氨基乙基)-2-氨基乙基]天冬酰胺} [ PAsp(DET)]在侧链[PEG-PLys-PAsp(DET-DN)]中带有疏水性二甲氧基硝基苄酯(DN)部分。所得的三嵌段共聚物在水溶液中自发形成具有疏水PAsp(DET-DN)核和PEG壳的100微米以下的聚合物胶束。该胶束能够将siRNA掺入到中间PLys层中,与略微减小的尺寸和窄的尺寸分布有关。三嵌段共聚物胶束(TCMs)将siRNA稳定地包裹在含血清的培养基中,而随机疏水化的三嵌段共聚物[PEG-PLys(DN)-PAsp(DET-DN)]对照胶束(RCMs)随着时间的推移逐渐释放siRNA,并且未聚乙二醇化二嵌段共聚物[PLys-PAsp(DET-DN)]控制胶束(DCM)立即形成大的聚集体。因此,与对照胶束相比,TCM在培养的癌细胞中诱导出明显更强的序列特异性基因沉默。用细胞吸收和细胞内运输进一步检查了用中药进行的siRNA递送。流式细胞仪分析显示,TCMs的细胞吸收效率高于RCM,但比DCM的吸收效率低。使用共聚焦激光扫描显微镜结合荧光共振能量转移(FRET)进行的细胞内运输研究表明,TCMs可以轻松释放细胞内的siRNA有效负载,这与DCM的释放曲线要慢得多。该结果表明,PEG壳有助于从细胞内的TCM平稳释放siRNA,大概是由于避免了不可逆的聚集体形成。获得的结果表明,单独官能化的聚合物链段的设计扩展了成功地siRNA传递的聚合物胶束的性能。

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