Pauwels Jarne, Van de Steene Tessa, Van de Velde Jana, De Muyer Freya, De Pauw Danaë, Baeke Femke, Eyckerman Sven, Gevaert Kris
VIB-UGent Center for Medical Biotechnology, VIB, Ghent, Belgium; Department of Biomolecular Medicine, Ghent University, Ghent, Belgium.
Ghent University Expertise Center for Transmission Electron Microscopy and VIB BioImaging Core, Ghent, Belgium; Department of Biomedical Molecular Biology, Ghent University, VIB Center for Inflammation Research, Ghent, Belgium.
Mol Cell Proteomics. 2025 Feb;24(2):100907. doi: 10.1016/j.mcpro.2025.100907. Epub 2025 Jan 21.
Extracellular vesicles (EVs), membrane-delimited nanovesicles that are secreted by cells into the extracellular environment, are gaining substantial interest due to their involvement in cellular homeostasis and their contribution to disease pathology. The latter in particular has led to an exponential increase in interest in EVs as they are considered to be circulating packages containing potential biomarkers and are also a possible biological means to deliver drugs in a cell-specific manner. However, several challenges hamper straightforward proteome analysis of EVs as they are generally low abundant and reside in complex biological matrices. These matrices typically contain abundant proteins at concentrations that vastly exceed the concentrations of proteins found in the EV proteome. Therefore, extensive EV isolation and purification protocols are imperative and many have been developed, including (density) ultracentrifugation, size-exclusion, and precipitation methods. Here, we describe filter-aided extracellular vesicle enrichment (FAEVEr) as an approach based on 300 kDa molecular weight cutoff filtration that allows the processing of multiple samples in parallel within a reasonable time frame and at moderate cost. We demonstrate that FAEVEr is capable of quantitatively retaining EV particles on filters, while allowing extensive washing with the mild detergent Tween-20 to remove interfering non-EV proteins. The retained particles are directly lysed on the filter for a complete recovery of the EV protein cargo toward proteome analysis. Here, we validate and optimize FAEVEr on recombinant EV material and apply it on conditioned medium as well as on complex bovine serum, human plasma, and urine. Our results indicate that EVs isolated from MCF7 cells cultured with or without serum have a drastic different proteome because of nutrient deprivation.
细胞外囊泡(EVs)是由细胞分泌到细胞外环境中的膜包纳米囊泡,因其参与细胞内稳态以及对疾病病理学的作用而备受关注。尤其是后者,使得人们对EVs的兴趣呈指数级增长,因为它们被认为是含有潜在生物标志物的循环包裹,也是以细胞特异性方式递送药物的一种可能的生物学手段。然而,由于EVs通常含量较低且存在于复杂的生物基质中,一些挑战阻碍了对其进行直接的蛋白质组分析。这些基质通常含有大量蛋白质,其浓度大大超过了EV蛋白质组中发现的蛋白质浓度。因此,广泛的EV分离和纯化方案是必不可少的,并且已经开发了许多方法,包括(密度)超速离心、尺寸排阻和沉淀法。在这里,我们描述了滤膜辅助细胞外囊泡富集(FAEVEr)方法,这是一种基于截留分子量为300 kDa的过滤方法,能够在合理的时间范围内以适中的成本并行处理多个样品。我们证明,FAEVEr能够在滤膜上定量保留EV颗粒,同时允许用温和的去污剂吐温-20进行广泛洗涤以去除干扰性非EV蛋白质。保留的颗粒直接在滤膜上裂解,以完全回收用于蛋白质组分析的EV蛋白质负载。在这里,我们在重组EV材料上验证并优化了FAEVEr,并将其应用于条件培养基以及复杂的牛血清、人血浆和尿液。我们的结果表明,从有无血清培养的MCF7细胞中分离出的EVs由于营养剥夺而具有截然不同的蛋白质组。