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通过与有效载体共转染来揭示无效递送载体的mRNA递送瓶颈。

Unraveling mRNA delivery bottlenecks of ineffective delivery vectors by co-transfection with effective carriers.

作者信息

Oude Egberink Rik, van Schie Deni M, Joosten Ben, de Muynck Lisa T A, Jacobs Ward, van Oostrum Jenny, Brock Roland

机构信息

Department of Medical BioSciences, Research Institute for Medical Innovation, Radboud University Medical Center, 6525 GA Nijmegen, the Netherlands.

Department of Medical BioSciences, Research Institute for Medical Innovation, Radboud University Medical Center, 6525 GA Nijmegen, the Netherlands; Department of Medical Biochemistry, College of Medicine and Medical Sciences, Arabian Gulf University, Manama 329, Bahrain.

出版信息

Eur J Pharm Biopharm. 2024 Sep;202:114414. doi: 10.1016/j.ejpb.2024.114414. Epub 2024 Jul 14.

Abstract

The messenger RNA (mRNA) SARS-CoV-2 vaccines have demonstrated the therapeutic potential of this novel drug modality. Protein expression is the consequence of a multistep delivery process that relies on proper packaging into nanoparticle carriers to protect the mRNA against degradation enabling effective cellular uptake and endosomal release, and liberating the mRNA in the cytosol. Bottlenecks along this route remain challenging to pinpoint. Although methods to assess endosomal escape of carriers have been developed, versatile strategies to identify bottlenecks along the delivery trajectory are missing. Here, it is shown that co-incubating an inefficient nanoparticle formulation with an efficient one solves this problem. Cells were co-incubated with mRNA nanoparticles formed with either the efficient cell-penetrating peptide (CPP) PepFect14 or the inefficient CPP nona-arginine (R9). Co-transfection enhanced cellular uptake and endosomal escape of R9-formulated mRNA, resulting in protein expression, demonstrating that both vectors enter cells along the same route. In addition, cells were transfected with a galectin-9-mCherry fusion protein to detect endosomal rupture. Remarkably, despite endosomal release, mRNA remained confined to punctate structures, identifying mRNA liberation as a further bottleneck. In summary, co-transfection offers a rapid means to identify bottlenecks in cytosolic mRNA delivery, supporting the rational design and optimization of intracellular mRNA delivery systems.

摘要

信使核糖核酸(mRNA)新冠病毒疫苗已展现出这种新型药物形式的治疗潜力。蛋白质表达是一个多步骤递送过程的结果,该过程依赖于将mRNA正确包装到纳米颗粒载体中,以保护其不被降解,从而实现有效的细胞摄取和从内体释放,并将mRNA释放到细胞质中。这条途径上的瓶颈仍然难以精确确定。尽管已经开发出评估载体从内体逃逸的方法,但仍缺少识别递送轨迹上瓶颈的通用策略。在此研究中,结果表明,将低效的纳米颗粒制剂与高效的纳米颗粒制剂共同孵育可解决这一问题。将细胞与由高效细胞穿透肽(CPP)PepFect14或低效CPP九聚精氨酸(R9)形成的mRNA纳米颗粒共同孵育。共转染增强了R9配制的mRNA的细胞摄取和从内体逃逸,从而导致蛋白质表达,这表明两种载体都沿着相同途径进入细胞。此外,用半乳糖凝集素-9-樱桃红色荧光蛋白融合物转染细胞以检测内体破裂。值得注意的是,尽管mRNA已从内体释放,但它仍局限于点状结构,这表明mRNA的释放是另一个瓶颈。总之,共转染提供了一种快速识别细胞质mRNA递送瓶颈的方法,有助于合理设计和优化细胞内mRNA递送系统。

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