Myatt Daniel P, Wharram Lewis, Graham Charlotte, Liddell John, Branton Harvey, Pizzey Claire, Cowieson Nathan, Rambo Robert, Shattock Robin J
The National Biologics Manufacturing Centre (NBMC), The Centre for Process Innovation, Darlington DL1 1GL, UK.
Diamond Light Source, Harwell Science and Innovation Campus, Didcot, Oxfordshire, UK.
Biol Methods Protoc. 2023 Feb 14;8(1):bpad001. doi: 10.1093/biomethods/bpad001. eCollection 2023.
The current SARS-Covid-2 (SARS-CoV-2) pandemic has led to an acceleration of messenger ribonucleic acid (mRNA) vaccine technology. The development of production processes for these large mRNA molecules, especially self-amplifying mRNA (saRNA), has required concomitant development of analytical characterization techniques. Characterizing the purity, shape and structure of these biomolecules is key to their successful performance as drug products. This article describes the biophysical characterization of the Imperial College London Self-amplifying viral RNA vaccine (IMP-1) developed for SARS-CoV-2. A variety of analytical techniques have been used to characterize the IMP-1 RNA molecule. In this article, we use ultraviolet spectroscopy, dynamic light scattering, size-exclusion chromatography small-angle X-ray scattering and circular dichroism to determine key biophysical attributes of IMP-1. Each technique provides important information about the concentration, size, shape, structure and purity of the molecule.
当前的严重急性呼吸综合征冠状病毒2(SARS-CoV-2)大流行加速了信使核糖核酸(mRNA)疫苗技术的发展。这些大型mRNA分子,尤其是自扩增mRNA(saRNA)生产工艺的开发,需要同时开发分析表征技术。表征这些生物分子的纯度、形状和结构是其作为药品成功发挥作用的关键。本文描述了为SARS-CoV-2开发的伦敦帝国理工学院自扩增病毒RNA疫苗(IMP-1)的生物物理表征。已使用多种分析技术来表征IMP-1 RNA分子。在本文中,我们使用紫外光谱、动态光散射、尺寸排阻色谱、小角X射线散射和圆二色性来确定IMP-1的关键生物物理属性。每种技术都提供了有关该分子的浓度、大小、形状、结构和纯度的重要信息。