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Anionic polymer and quantum dot excipients to facilitate siRNA release and self-reporting of disassembly in stimuli-responsive nanocarrier formulations

机译:阴离子聚合物和量子点赋形剂可促进刺激反应性纳米载体制剂中siRNA的释放和解体的自我报告

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摘要

The incorporation of anionic excipients into polyplexes is a promising strategy for modulating siRNA binding vs. release and integrating diagnostic capabilities; however, specific design criteria and structure-function relationships are needed to facilitate the development of nanocarrier-based theranostics. Herein, we incorporated poly(acrylic acid) (PAA) and quantum dot (QD) excipients into photolabile siRNA polyplexes to increase gene silencing efficiencies by up to 100% and enable self-reporting of nanocarrier disassembly. Our systematic approach identified the functional relationships between gene silencing and key parameters such as excipient loading fractions and molecular weights that enabled the establishment of design rules for optimization of nanocarrier efficacy. For example, we found that PAA molecular weights ~10–20 times greater than that of the co-encapsulated siRNA exhibited the most efficient release and silencing. Furthermore, siRNA release assays and RNAi modeling allowed us to generate a PAA “heat map” that predicted gene silencing a priori as a function of PAA molecular weight and loading fraction. QDs further promoted selective siRNA release and provided visual as well as Förster resonance energy transfer (FRET)-based monitoring of the dynamic changes in nanostructure in situ. Moreover, even with the addition of anionic components, our formulations exhibited substantially improved stability and shelf-life relative to typical formulations, with complete stability after a week of storage and full activity in the presence of serum. Taken together, this study enabled synergistic improvements in siRNA release and diagnostic capabilities, along with the development of mechanistic insights that are critical for advancing the translation of nucleic acid theranostics into the clinic.
机译:将阴离子赋形剂掺入多链体中是调节siRNA结合释放与整合诊断能力的有前途的策略。然而,需要特殊的设计标准和结构-功能关系来促进基于纳米载体的治疗学的发展。在这里,我们将聚(丙烯酸)(PAA)和量子点(QD)赋形剂掺入了光不稳定的siRNA多聚体中,从而使基因沉默效率提高了100%,并实现了纳米载体拆卸的自我报告。我们的系统方法确定了基因沉默与关键参数之间的功能关系,这些关键参数例如赋形剂的负载量和分子量,从而可以建立优化纳米载体功效的设计规则。例如,我们发现PAA分子量是共包封的siRNA的约10-20倍,表现出最有效的释放和沉默。此外,siRNA释放测定和RNAi建模使我们能够生成PAA“热图”,该图预测了先天基因沉默与PAA分子量和负载分数的关系。 QD进一步促进了选择性siRNA的释放,并提供了基于视觉以及基于Förster共振能量转移(FRET)的纳米结构动态变化监测。此外,即使添加了阴离子成分,我们的制剂相对于典型制剂仍显示出显着改善的稳定性和保质期,在储存一周后具有完全的稳定性,并且在存在血清的情况下具有完整的活性。综上所述,这项研究实现了siRNA释放和诊断能力的协同改善,以及对促进核酸治疗专家向临床翻译至关重要的机械洞察力的发展。

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