Delivery vehicle and route of administration influences self-amplifying RNA biodistribution, expression kinetics, and reactogenicity

IF 10.5 1区 医学 Q1 CHEMISTRY, MULTIDISCIPLINARY
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Abstract

Self-amplifying RNA (saRNA) is a next-generation RNA platform derived from an alphavirus that enables replication in host cytosol, offering a promising shift from traditional messenger RNA (mRNA) therapies by enabling sustained protein production from minimal dosages. The approval of saRNA-based vaccines, such as the ARCT-154 for COVID-19 in Japan, underscores its potential for diverse therapeutic applications, including vaccine development, cancer immunotherapy, and gene therapy. This study investigates the role of delivery vehicle and administration route on saRNA expression kinetics and reactogenicity. Employing ionizable lipid-based nanoparticles (LNPs) and polymeric nanoparticles, we administered saRNA encoding firefly luciferase to BALB/c mice through six routes (intramuscular (IM), intradermal (ID), intraperitoneal (IP), intranasal (IN), intravenous (IV), and subcutaneous (SC)), and observed persistent saRNA expression over a month. Our findings reveal that while LNPs enable broad route applicability and stability, pABOL (poly (cystamine bisacrylamide-co-4-amino-1-butanol)) formulations significantly amplify protein expression via intramuscular delivery. Notably, the disparity between RNA biodistribution and protein expression highlight the nuanced interplay between administration routes, delivery vehicles, and therapeutic outcomes. Additionally, our research unveiled distinct biodistribution profiles and inflammatory responses contingent upon the chosen delivery formulation and route. This research illuminates the intricate dynamics governing saRNA delivery, biodistribution and reactogenicity, offering essential insights for optimizing therapeutic strategies and advancing the clinical and commercial viability of saRNA technologies.

Abstract Image

给药载体和给药途径会影响自扩增 RNA 的生物分布、表达动力学和致反应性。
自扩增 RNA(saRNA)是一种源自α病毒的下一代 RNA 平台,可在宿主细胞质中复制,以最小的剂量持续产生蛋白质,从而有望取代传统的信使 RNA(mRNA)疗法。基于 saRNA 的疫苗(如日本用于 COVID-19 的 ARCT-154 疫苗)已获批准,这凸显了它在疫苗开发、癌症免疫疗法和基因疗法等多种治疗应用中的潜力。本研究探讨了给药载体和给药途径对 saRNA 表达动力学和反应性的影响。我们采用可离子化的脂基纳米颗粒(LNPs)和聚合物纳米颗粒,通过六种途径(肌肉注射(IM)、皮内注射(ID)、腹膜内注射(IP)、鼻内注射(IN)、静脉注射(IV)和皮下注射(SC))给 BALB/c 小鼠注射了编码萤火虫荧光素酶的 saRNA,并观察到 saRNA 在一个月内的持续表达。我们的研究结果表明,LNPs 具有广泛的途径适用性和稳定性,而 pABOL(聚(胱胺基双丙烯酰胺-co-4-氨基-1-丁醇))制剂则能通过肌肉注射显著提高蛋白质表达。值得注意的是,RNA 生物分布和蛋白质表达之间的差异凸显了给药途径、给药载体和治疗效果之间微妙的相互作用。此外,我们的研究还揭示了与所选给药配方和途径不同的生物分布特征和炎症反应。这项研究揭示了saRNA递送、生物分布和致反应性的复杂动态,为优化治疗策略、提高saRNA技术的临床和商业可行性提供了重要见解。
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
Journal of Controlled Release
Journal of Controlled Release 医学-化学综合
CiteScore
18.50
自引率
5.60%
发文量
700
审稿时长
39 days
期刊介绍: The Journal of Controlled Release (JCR) proudly serves as the Official Journal of the Controlled Release Society and the Japan Society of Drug Delivery System. Dedicated to the broad field of delivery science and technology, JCR publishes high-quality research articles covering drug delivery systems and all facets of formulations. This includes the physicochemical and biological properties of drugs, design and characterization of dosage forms, release mechanisms, in vivo testing, and formulation research and development across pharmaceutical, diagnostic, agricultural, environmental, cosmetic, and food industries. Priority is given to manuscripts that contribute to the fundamental understanding of principles or demonstrate the advantages of novel technologies in terms of safety and efficacy over current clinical standards. JCR strives to be a leading platform for advancements in delivery science and technology.
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