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细胞外囊泡可扩展生物力学特性的高内涵定量原子力显微镜分析

High content, quantitative AFM analysis of the scalable biomechanical properties of extracellular vesicles.

作者信息

Gazze Salvatore Andrea, Thomas Samantha J, Garcia-Parra Jetzabel, James David W, Rees Paul, Marsh-Durban Victoria, Corteling Randolph, Gonzalez Deyarina, Conlan R Steven, Francis Lewis W

机构信息

Reproductive Biology and Gynaecological Oncology Group, Institute for Life Science 2, Medical School, Swansea University, Singleton Park, Swansea SA2 8PP, UK.

出版信息

Nanoscale. 2021 Mar 28;13(12):6129-6141. doi: 10.1039/d0nr09235e. Epub 2021 Mar 17.

Abstract

Extracellular vesicles (EVs) are studied extensively as natural biomolecular shuttles and for their diagnostic and therapeutic potential. This exponential rise in interest has highlighted the need for highly robust and reproducible approaches for EV characterisation. Here we optimise quantitative nanomechanical tools and demonstrate the advantages of EV population screening by atomic force microscopy (AFM). Our high-content informatics analytical tools are made available for use by the EV community for widespread, standardised determination of structural stability. Ultracentrifugation (UC) and sonication, the common mechanical techniques used for EV isolation and loading respectively, are used to demonstrate the utility of optimised PeakForce-Quantitative Nano Mechanics (PF-QNM) analysis. EVs produced at an industrial scale exhibited biochemical and biomechanical alterations after exposure to these common techniques. UC resulted in slight increases in physical dimensions, and decreased EV adhesion concurrent with a decrease in CD63 content. Sonicated EVs exhibited significantly reduced levels of CD81, a decrease in size, increased Young's modulus and decreased adhesive force. These biomechanical and biochemical changes highlight the effect of EV sample preparation techniques on critical properties linked to EV cellular uptake and biological function. PF-QNM offers significant additional information about the structural information of EVs following their purification and downstream processing, and the analytical tools will ensure consistency of analysis of AFM data by the EV community, as this technique continues to become more widely implemented.

摘要

细胞外囊泡(EVs)作为天然生物分子穿梭载体及其诊断和治疗潜力受到广泛研究。对其兴趣的指数级增长凸显了对用于EV表征的高度稳健且可重复方法的需求。在此,我们优化了定量纳米力学工具,并展示了通过原子力显微镜(AFM)进行EV群体筛选的优势。我们的高内涵信息学分析工具可供EV研究群体使用,以广泛、标准化地确定结构稳定性。分别用于EV分离和加载的常用机械技术——超速离心(UC)和超声处理,被用于证明优化后的峰值力定量纳米力学(PF-QNM)分析的实用性。工业规模生产的EV在暴露于这些常用技术后表现出生物化学和生物力学改变。UC导致物理尺寸略有增加,EV粘附力下降,同时CD63含量降低。经超声处理的EV显示CD81水平显著降低,尺寸减小,杨氏模量增加,粘附力降低。这些生物力学和生物化学变化突出了EV样品制备技术对与EV细胞摄取和生物学功能相关的关键特性的影响。PF-QNM在EV纯化和下游处理后提供了有关EV结构信息的重要额外信息,并且随着该技术的不断更广泛应用,这些分析工具将确保EV研究群体对AFM数据的分析具有一致性。

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