Supramolecular assembly of polycation/mRNA nanoparticles and in vivo monocyte programming.

IF 9.4 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES Proceedings of the National Academy of Sciences of the United States of America Pub Date : 2024-08-27 Epub Date: 2024-08-22 DOI:10.1073/pnas.2400194121
Yizong Hu, Stephany Y Tzeng, Leonardo Cheng, Jinghan Lin, Andres Villabona-Rueda, Shuai Yu, Sixuan Li, Zachary Schneiderman, Yining Zhu, Jingyao Ma, David R Wilson, Sydney R Shannon, Tiarra Warren, Yuan Rui, Chenhu Qiu, Erin W Kavanagh, Kathryn M Luly, Yicheng Zhang, Nicole Korinetz, Franco R D'Alessio, Tza-Huei Wang, Efrosini Kokkoli, Sashank K Reddy, Erik Luijten, Jordan J Green, Hai-Quan Mao
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Abstract

Size-dependent phagocytosis is a well-characterized phenomenon in monocytes and macrophages. However, this size effect for preferential gene delivery to these important cell targets has not been fully exploited because commonly adopted stabilization methods for electrostatically complexed nucleic acid nanoparticles, such as PEGylation and charge repulsion, typically arrest the vehicle size below 200 nm. Here, we bridge the technical gap in scalable synthesis of larger submicron gene delivery vehicles by electrostatic self-assembly of charged nanoparticles, facilitated by a polymer structurally designed to modulate internanoparticle Coulombic and van der Waals forces. Specifically, our strategy permits controlled assembly of small poly(β-amino ester)/messenger ribonucleic acid (mRNA) nanoparticles into particles with a size that is kinetically tunable between 200 and 1,000 nm with high colloidal stability in physiological media. We found that assembled particles with an average size of 400 nm safely and most efficiently transfect monocytes following intravenous administration and mediate their differentiation into macrophages in the periphery. When a CpG adjuvant is co-loaded into the particles with an antigen mRNA, the monocytes differentiate into inflammatory dendritic cells and prime adaptive anticancer immunity in the tumor-draining lymph node. This platform technology offers a unique ligand-independent, particle-size-mediated strategy for preferential mRNA delivery and enables therapeutic paradigms via monocyte programming.

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多阳离子/核糖核酸纳米粒子的超分子组装和体内单核细胞编程。
大小依赖性吞噬是单核细胞和巨噬细胞的一种特征明显的现象。然而,由于静电络合核酸纳米粒子通常采用的稳定方法(如 PEG 化和电荷排斥)通常会将载体尺寸限制在 200 纳米以下,因此这种优先向这些重要细胞靶点递送基因的尺寸效应尚未得到充分利用。在这里,我们通过带电纳米粒子的静电自组装,弥补了可规模化合成更大亚微米级基因递送载体的技术差距,而聚合物的结构设计可调节粒子间的库仑力和范德华力。具体来说,我们的策略可将小型聚(β-氨基酯)/信使核糖核酸(mRNA)纳米粒子可控地组装成颗粒,颗粒大小可在 200 纳米到 1000 纳米之间动态调节,在生理介质中具有很高的胶体稳定性。我们发现,平均尺寸为 400 nm 的组装颗粒能在静脉注射后安全高效地转染单核细胞,并在外周介导其分化为巨噬细胞。当 CpG 佐剂与抗原 mRNA 共同载入颗粒时,单核细胞会分化成炎性树突状细胞,并激发肿瘤引流淋巴结中的适应性抗癌免疫。该平台技术提供了一种独特的配体无关、颗粒大小介导的优先 mRNA 递送策略,并通过单核细胞编程实现了治疗范例。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
19.00
自引率
0.90%
发文量
3575
审稿时长
2.5 months
期刊介绍: The Proceedings of the National Academy of Sciences (PNAS), a peer-reviewed journal of the National Academy of Sciences (NAS), serves as an authoritative source for high-impact, original research across the biological, physical, and social sciences. With a global scope, the journal welcomes submissions from researchers worldwide, making it an inclusive platform for advancing scientific knowledge.
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