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美利体育登录入口官网:可电离脂质纳米颗粒用于mRNA递送:内部自组装反相液晶结构与内体逃逸

Ionizable Lipid Nanoparticles for mRNA Delivery: Internal Self-Assembled Inverse Mesophase Structure and Endosomal Escape

作者:Haitao Yu;Brendan P. Dyett;Calum J. Drummond;Jiali Zhai;

DOI:https://doi.org/10.1021/acs.accounts.5c00522

发表时间:2025年

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美利体育登录入口官网:摘要

点击复制节链接节链接已复制!综述Moderna和Pfizer-BioNTech开发的mRNA新冠疫苗的临床应用,突显了可电离脂质纳米颗粒(LNPs)在mRNA高效装载、细胞内递送和胞质释放中的关键作用。这些LNPs通常由可电离脂质、辅助脂质、胆固醇和聚乙二醇化脂质组成,每种成分均对最终mRNA-LNPs在体外和体内的稳定性、结构、包封效率以及纳米颗粒-生物学相互作用产生贡献。值得注意的是,BioNTech/Pfizer疫苗中使用的可电离氨基脂质ALC-0315和Moderna疫苗中使用的SM-102具有相似的分子结构,其特征是通过酯键连接的多个饱和脂肪链与叔胺基团相连。这些氨基脂质的酸化诱导电离行为对于实现内体逃逸和促进治疗性mRNA的细胞内转染至关重要。然而,尽管这些LNPs已广泛用于临床,其理化性质与生物相互作用及功能的关系仍不明确,特别是关于内体成熟过程中内部纳米结构演变如何影响mRNA释放、内体逃逸和基因表达的问题。目前的基础理解仍阻碍了RNA治疗药物的合理设计和优化。凭借在两亲分子自组装和结构表征方面的长期专长,特别是逆向液晶介晶相形成脂质领域,我们的团队旨在通过建立pH触发的介晶相转变与mRNA-LNPs生物性能之间的明确联系,填补这一关键知识空白,旨在提供关于内部纳米结构如何影响mRNA递送效率的新机制见解。本综述聚焦于含两种新冠疫苗可电离脂质(ALC-0315和SM-102)的可电离LNPs的pH依赖性逆向介晶结构行为。我们应用了高通量和前沿的时序分辨同步辐射小角X射线散射(SAXS)技术,研究了酸化条件下这些可电离LNPs(有无核酸载荷,包括mRNA、polyA尾和质粒DNA)的静态和动力学自组装及结构转变。我们进一步探讨了LNPs中其他成分(如特定结构形成辅助脂质(单油酸甘油酯和植烷三醇)和胆固醇)对其理化性质、介晶行为和基因传递性能的影响。值得注意的是,我们发现了LNPs介晶相转变(从无序状态到有序逆向胶束、六角形和立方相)与其在巨噬细胞中mRNA转染效率的相关性,为内部纳米结构在内体逃逸和基因表达中的作用提供了机制性见解。此外,我们还探讨了蛋白质冠在暴露于生物环境时对LNPs性能的影响。


美利体育登录入口官网:Abstract

AbstractClick to copy section linkSection link copied!ConspectusThe clinical use of mRNA COVID-19 vaccines developed by Moderna and Pfizer-BioNTech has highlighted the critical role of ionizable lipid nanoparticles (LNPs) in the efficient loading, intracellular delivery, and cytoplasmic release of mRNAs. These LNPs typically comprise an ionizable lipid, a helper lipid, cholesterol, and a PEGylated-lipid, each contributing to the stability, structure, encapsulation efficiency, and nanoparticle–biology interactions of the final mRNA–LNPs both in vitro and in vivo. Notably, the ionizable amino-lipids, ALC-0315 used in the BioNTech/Pfizer vaccine and SM-102 in the Moderna vaccine, possess similar molecular structures, featuring multiple saturated aliphatic chains linked to a tertiary amine group via ester bonds. The acidification-induced ionization behavior of these amino-lipids is essential for enabling endosomal escape and facilitating the intracellular transfection of therapeutic mRNAs. However, despite their widespread clinical use, the physicochemical property–biological interaction and function relationships for LNPs remain poorly understood, particularly regarding how the internal nanostructural evolution during endosomal maturation influences mRNA release, endosomal escape, and gene expression. The rudimentary understanding continues to impede the rational design and optimization of RNA therapeutics.With long-standing expertise in amphiphile self-assembly and structural characterization, especially inverse lyotropic liquid crystalline mesophase-forming lipids, our group seeks to address this critical knowledge gap by establishing a clear connection between pH-triggered mesophase transitions and the biological performance of mRNA–LNPs, with the aim of providing new mechanistic insight into how the internal nanostructure affects mRNA delivery efficiency. This Account focuses on the pH-dependent inverse mesostructural behavior of ionizable LNPs containing two COVID-19 mRNA vaccine ionizable lipids, ALC-0315 and SM-102. We have applied high-throughput and cutting-edge time-resolved synchrotron radiation small-angle X-ray scattering (SAXS) to investigate both static and kinetic self-assembly and structural transitions of these ionizable LNPs without and with nucleic acid cargos (including mRNAs, polyA tails, and plasmid DNAs) upon acidification. We further explored the influence of other components in LNPs, such as select structure-forming helper lipids (monoolein and phytantriol) and cholesterol, on their physicochemical properties, mesophase behavior, and gene delivery performance. Notably, we correlated the mesophase transition of LNPs, from nonordered state to ordered inverse micellar, hexagonal, and cubic phases, with their mRNA transfection efficiency in macrophage cells, providing mechanistic insight into the role of internal nanostructure in endosomal escape and gene expression. Moreover, we addressed the impact of protein coronas formed upon exposure to biological environments, which can significantly alter the LNP internal structure and delivery efficiency. Our findings suggest that protein corona-modulated phase behavior of LNPs may contribute to reported inconsistency between in vitro and in vivo performance. Finally, we offer a perspective on future research trends in improving endosomal escape efficiency, promoting a passive nonendocytic cellular uptake pathway, modulating protein corona effects, monitoring the immune compatibility of PEG-free stabilizers, and leveraging of artificial intelligence approaches to accelerate formulation design and screening. Overall, this Account provides guidance for future mechanistic research with respect to LNP internal structures under various environmental and biological conditions, enabling the rational design of next-generation RNA therapeutics.ACS PublicationsCopyright ? 2025 American Chemical SocietySubjectswhat are subjects Article subjects are automatically applied from the ACS Subject Taxonomy and describe the scientific concepts and themes of the article. Cholesterol Gene delivery Lipids Mesostructures Nanoparticles


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