Poly(l-glutamic acid) augments the transfection performance of lipophilic polycations by overcoming tradeoffs among cytotoxicity, pDNA delivery efficiency, and serum stability†

Ram Prasad Sekar, Jessica L. Lawson, Aryelle R. E. Wright, Caleb McGrath, Cesar Schadeck, Praveen Kumar, Jian Wei Tay, Joseph Dragavon and Ramya Kumar
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Abstract

Polycations are scalable and affordable nanocarriers for delivering therapeutic nucleic acids. Yet, cationicity-dependent tradeoffs between nucleic acid delivery efficiency, cytotoxicity, and serum stability hinder clinical translation. Typically, the most efficient polycationic vehicles also tend to be the most toxic. For lipophilic polycations—which recruit hydrophobic interactions in addition to electrostatic interactions to bind and deliver nucleic acids—extensive chemical or architectural modifications sometimes fail to resolve intractable toxicity—efficiency tradeoffs. Here, we employ a facile post-synthetic polyplex surface modification strategy wherein poly(L-glutamic acid) (PGA) rescues toxicity, inhibits hemolysis, and prevents serum inhibition of lipophilic polycation-mediated plasmid (pDNA) delivery. Importantly, the sequence in which polycations, pDNA, and PGA are combined dictates pDNA conformations and spatial distribution. Circular dichroism spectroscopy reveals that PGA must be added last to polyplexes assembled from lipophilic polycations and pDNA; else, PGA will disrupt polycation-mediated pDNA condensation. Although PGA did not mitigate toxicity caused by hydrophilic PEI-based polycations, PGA tripled the population of transfected viable cells for lipophilic polycations. Non-specific adsorption of serum proteins abrogated pDNA delivery mediated by lipophilic polycations; however, PGA-coated polyplexes proved more serum-tolerant than uncoated polyplexes. Despite lower cellular uptake than uncoated polyplexes, PGA-coated polyplexes were imported into nuclei at higher rates. PGA also silenced the hemolytic activity of lipophilic polycations. Our work provides fundamental insights into how polyanionic coatings such as PGA transform intermolecular interactions between lipophilic polycations, nucleic acids, and serum proteins, and facilitate gentle yet efficient transgene delivery.

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聚(l-谷氨酸)通过克服细胞毒性、pDNA 递送效率和血清稳定性之间的权衡,提高了亲脂多阳离子的转染性能†。
聚阳离子是一种可扩展且经济实惠的纳米载体,可用于递送治疗性核酸。然而,阳离子依赖性在核酸递送效率、细胞毒性和血清稳定性之间的权衡阻碍了临床转化。通常情况下,最高效的多阳离子载体往往也是毒性最强的。对于亲脂性多阳离子来说,除了静电作用外,它们还需要疏水相互作用来结合和递送核酸,大量的化学或结构修饰有时无法解决棘手的毒性-效率权衡问题。在这里,我们采用了一种简便的后合成多聚体表面修饰策略,其中的聚(L-谷氨酸)(PGA)可以消除毒性、抑制溶血并防止血清对亲脂多聚阳离子介导的质粒(pDNA)递送的抑制。重要的是,多阳离子、pDNA 和 PGA 的组合顺序决定了 pDNA 的构象和空间分布。环二色性光谱显示,PGA 必须最后加入由亲脂性多阳离子和 pDNA 组成的多聚体中;否则,PGA 会破坏多阳离子介导的 pDNA 凝聚。虽然 PGA 不能减轻亲水性 PEI 基多聚阳离子引起的毒性,但对于亲脂性多聚阳离子,PGA 能使转染的可存活细胞数量增加三倍。血清蛋白的非特异性吸附削弱了亲脂性多聚阳离子介导的 pDNA 递送;然而,PGA 涂层多聚物比无涂层多聚物更耐血清。尽管细胞摄取量低于未包被的多聚物,但 PGA 包被的多聚物以更高的速率被导入细胞核。PGA 还能抑制亲脂性多聚阳离子的溶血活性。我们的研究从根本上揭示了 PGA 等聚阴离子涂层如何改变亲脂性多聚阳离子、核酸和血清蛋白之间的分子间相互作用,并促进温和而高效的转基因递送。
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