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超高压逆流色谱:在细胞和基因治疗中相关的大 DNA 和 RNA 样品的表征中的应用。

Ultra-high pressure slalom chromatography: Application to the characterization of large DNA and RNA samples relevant in cell and gene therapy.

机构信息

Waters Corporation, Core Research/Fundamental Milford, MA, 01757, USA.

出版信息

J Chromatogr A. 2024 Dec 6;1738:465487. doi: 10.1016/j.chroma.2024.465487. Epub 2024 Nov 7.

Abstract

Slalom chromatography (SC), initially co-discovered by Boyes and Kasai in the late 1980s, has recently re-emerged as a breakthrough technique to rapidly analyze DNA samples. With the development of cutting-edge ultra-high pressure liquid chromatography (UHPLC) systems and columns, SC now offers enhanced resolution and sensitivity for analyzing large DNA samples. By revisiting the fundamentals of the SC retention mechanism (non-equilibrium separation mode) and considering the physicochemical properties of DNA biopolymers (contour length, extension under shear flow, relaxation time), we provide analytical chemists with a general strategy and framework for selecting the most relevant applications in the expanding field of cell and gene therapy. We then present proof-of-concept data demonstrating the rapid separation (under 2 min) of plasmid digest samples containing linear double-stranded (ds) DNA macromolecules starting from 2 kbp to 25 kbp, as well as the accurate size determination (±6%) of linear dsDNAs. Additionally, we show rapid baseline separation and quantification of extensible linear dsDNAs, along with the more rigid plasmid dsDNA (supercoiled/circular/nicked circular). We also quantify dsRNA impurities present in vitro transcription (IVT) media used for producing new mRNA therapeutics and assess dsRNA structural heterogeneity (conformational isomers). These findings aim to support in a near future application chemists in addressing emerging bioanalytical challenges in cell and gene therapy by offering advanced SC columns and methods.

摘要

蛇形流色谱(SC)最初由 Boyes 和 Kasai 在 20 世纪 80 年代末共同发现,最近作为一种突破性技术重新出现,用于快速分析 DNA 样本。随着尖端超高压液相色谱(UHPLC)系统和柱的发展,SC 现在为分析大型 DNA 样本提供了增强的分辨率和灵敏度。通过重新审视 SC 保留机制(非平衡分离模式)的基础,并考虑 DNA 生物聚合物的物理化学性质(轮廓长度、剪切流下的伸展、弛豫时间),我们为分析化学家提供了一种通用策略和框架,用于选择在细胞和基因治疗领域不断扩展的最相关应用。然后,我们提出了概念验证数据,证明了快速分离(在 2 分钟内)从 2 kbp 到 25 kbp 的线性双链(ds)DNA 大分子的质粒消化样品,以及线性 dsDNA 的准确尺寸测定(±6%)。此外,我们展示了可扩展线性 dsDNA 的快速基线分离和定量,以及更刚性的质粒 dsDNA(超螺旋/环形/缺口环形)。我们还定量了体外转录(IVT)介质中存在的 dsRNA 杂质,用于生产新的 mRNA 治疗药物,并评估了 dsRNA 结构异质性(构象异构体)。这些发现旨在通过提供先进的 SC 柱和方法,为未来化学家解决细胞和基因治疗中的新兴生物分析挑战提供支持。

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