Sun Simou, Cox-Vázquez Sarah J, Cho Nam-Joon, Bazan Guillermo C, Groves Jay T
Institute for Digital Molecular Analytics and Science, Nanyang Technological University, Singapore, Singapore.
Current address: Department of Chemistry, Stony Brook University, New York, United States.
J Extracell Vesicles. 2024 Dec;13(12):e12520. doi: 10.1002/jev2.12520.
Small extracellular vesicles and nanoparticles (sEVPs) are cell-secreted entities with potential as diagnostic biomarkers and therapeutic vehicles. However, significant intrinsic sEVP heterogeneity impedes analysis and understanding of their composition and functions. We employ multidimensional fluorescent labelling on sEVPs, leveraging the robustness of a newly developed membrane probe-conjugated oligoelectrolytes (COEs), and conduct total internal reflection fluorescence (TIRF) microscopy on sEVP arrays. These arrays comprise single sEVPs anchored to a soft material functionalized surface with little bias. We then develop an enhanced algorithm for colocalization analysis of the multiple labels on individual sEVPs and perform deep profiling of particle content. We categorize sEVPs derived from the same cell type into seven distinct subpopulations-some vesicular whereas others non-vesicular, and we demonstrate that sEVPs from four cell types exhibit quantitatively distinguishable subpopulation distributions. Furthermore, we gain insights into specific particle features within each subpopulation, including CD63 counts, relative particle size, relative concentration of cargoes, and correlations among different cargoes. This high-content analysis reveals common cargo sorting features in sEVP subpopulations across different cell types and suggests new statistics within the sEVP inherent heterogeneity that could differentiate sEVPs from two types of cancer cells and two types of normal cells. Collectively, our study presents a robust single-sEVP characterization platform, combining high-content imaging with comprehensive analysis. This platform is poised to advance sEVP-based theranostic assays and facilitate exploration into disease-associated sEVP biogenesis and sEVP-mediated intercellular communication.
小细胞外囊泡和纳米颗粒(sEVPs)是细胞分泌的实体,具有作为诊断生物标志物和治疗载体的潜力。然而,sEVP固有的显著异质性阻碍了对其组成和功能的分析与理解。我们利用新开发的膜探针共轭寡电解质(COEs)的稳健性对sEVPs进行多维荧光标记,并对sEVP阵列进行全内反射荧光(TIRF)显微镜观察。这些阵列由单个sEVPs锚定在功能化的软材料表面组成,偏差很小。然后,我们开发了一种增强算法,用于对单个sEVPs上的多个标记进行共定位分析,并对颗粒内容物进行深度剖析。我们将来自同一细胞类型的sEVPs分为七个不同的亚群——一些是囊泡状的,而另一些是非囊泡状的,并且我们证明来自四种细胞类型的sEVPs表现出定量可区分的亚群分布。此外,我们深入了解了每个亚群内的特定颗粒特征,包括CD63计数、相对颗粒大小、货物的相对浓度以及不同货物之间的相关性。这种高内涵分析揭示了不同细胞类型的sEVP亚群中常见的货物分选特征,并提出了sEVP固有异质性中的新统计数据,这些数据可以区分来自两种癌细胞和两种正常细胞的sEVPs。总体而言,我们的研究提出了一个强大的单sEVP表征平台,将高内涵成像与综合分析相结合。该平台有望推动基于sEVP的治疗诊断分析,并促进对疾病相关的sEVP生物发生和sEVP介导的细胞间通讯的探索。