使用抗ncam免疫捕获头方法检测细胞条件培养基和人血浆中神经元细胞外囊泡的富集。

BMC methods Pub Date : 2025-01-01 Epub Date: 2025-07-01 DOI:10.1186/s44330-025-00034-7
Mary E W Collier, Natalie Allcock, Nicolas Sylvius, Jordan Cassidy, Flaviano Giorgini
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引用次数: 0

摘要

背景:从生物体液中分离神经元源性细胞外囊泡(nev)为发现新的生物标志物提供了潜力,有助于精神疾病和神经退行性疾病的诊断和治疗。一些研究使用抗ncam抗体珠状免疫捕获从血浆中富集新冠病毒,其中一些方法没有得到验证。因此,我们对这种富集新能源汽车的方法进行了详细研究。方法:采用沉淀法从SH-SY5Y细胞条件培养基中分离ev,或采用尺寸隔离色谱法从血浆中分离ev。采用纳米颗粒跟踪分析(NTA)、透射电子显微镜(TEM)和免疫印迹分析对电动汽车进行了表征。sh - sy5y - ev与抗ncam免疫捕获珠孵育,采用流式细胞术、免疫印迹分析和扫描电镜(SEM)检测。采用灵敏的NCAM ELISA、SEM和qPCR检测免疫捕获的血浆源性ev的mirna。结果:sh - sy5y源性和血浆源性EVs的表征使用NTA显示了EVs的预期大小分布,使用免疫印迹分析显示了EVs标记的存在,使用TEM显示了杯状形态。流式细胞术和免疫印迹分析显示,抗ncam珠粒,而非抗l1cam珠粒或IgG珠粒,捕获了ncam阳性的sh - sy5y - ev。SH-SY5Y和血浆源性ev均在抗ncam免疫捕获珠表面通过扫描电镜可见。一种灵敏的NCAM ELISA检测了抗NCAM珠免疫捕获的血浆源性ev中的NCAM抗原。血浆源性ev的qPCR分析检测到总血浆ev中有许多mirna高表达hsa-miR-16-5p、hsa-miR-451a和hsa-miR-126-3p。然而,在来自三名献血者的抗ncam珠上捕获的ev中只检测到2到7个mirna。最后,对来自血浆源性ev的mirna在anti-NCAM珠上的组织分布分析显示,这些mirna在血管、肺、骨、甲状腺和心脏等组织或器官中富集,但在脑源性mirna中不富集。讨论:本研究表明抗ncam微球可以有效地从细胞培养条件培养基中富集ncam阳性的ev。然而,小体积血浆中的nEV水平可能太低,无法为随后的miRNA分析提供有效的抗ncam免疫捕获。因此,处理血浆量低的患者样本需要在新能源病毒上具有高表达水平的其他神经元特异性标记物,并允许在临床研究中有效分离新能源病毒,以便随后进行货物分析。补充信息:在线版本包含补充资料,提供地址:10.1186/s44330-025-00034-7。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Examination of the enrichment of neuronal extracellular vesicles from cell conditioned media and human plasma using an anti-NCAM immunocapture bead approach.

Background: The isolation of neuron-derived extracellular vesicles (nEVs) from biofluids offers the potential to discover novel biomarkers to aid in diagnosis and treatment of psychiatric and neurodegenerative diseases. A few studies have used anti-NCAM antibody-bead-based immunocapture to enrich nEVs from plasma, some with little method validation. We therefore examined in detail this method for nEV enrichment.

Methods: EVs were isolated from SH-SY5Y cell-conditioned media by precipitation, or from plasma using size exclusion chromatography. EVs were characterised using nanoparticle tracking analysis (NTA), transmission electron microscopy (TEM) and immunoblot analysis. SH-SY5Y-EVs were incubated with anti-NCAM immunocapture beads and examined by flow cytometry, immunoblot analysis and scanning electron microscopy (SEM). Immunocaptured plasma-derived EVs were examined using a sensitive NCAM ELISA, SEM and qPCR for miRNAs.

Results: Characterisation of SH-SY5Y-derived and plasma-derived EVs revealed the expected size distributions of EVs using NTA, the presence of EV markers using immunoblot analysis, and a cup-shaped morphology using TEM. Anti-NCAM beads, but not anti-L1CAM or IgG beads, captured NCAM-positive SH-SY5Y-EVs as shown by flow cytometry and immunoblot analysis. Both SH-SY5Y and plasma-derived EVs were visualised on the surface of anti-NCAM immunocapture beads using SEM. A sensitive NCAM ELISA detected NCAM antigen in plasma-derived EVs immunocaptured on anti-NCAM beads. qPCR analysis of plasma-derived EVs detected many miRNAs in total plasma-EVs with high expression of hsa-miR-16-5p, hsa-miR-451a and hsa-miR-126-3p. However, only between two and seven miRNAs were detected in EVs captured on anti-NCAM-beads from three blood donors. Finally, tissue distribution analysis of miRNAs from plasma-derived EVs on anti-NCAM beads revealed that these miRNAs are enriched in tissues or organs such as blood vessels, lung, bone, thyroid and heart, but were not enriched for brain-derived miRNAs.

Discussion: This study indicates that anti-NCAM beads can efficiently enrich NCAM-positive EVs from cell culture conditioned media. However, nEV levels in small volumes of plasma are possibly too low to enable efficient anti-NCAM immunocapture for subsequent miRNA analysis. Other neuron-specific markers with high expression levels on nEVs are therefore required for processing patient samples where plasma volumes are low, and to allow efficient isolation of nEVs in clinical studies for subsequent cargo analysis.

Supplementary information: The online version contains supplementary material available at 10.1186/s44330-025-00034-7.

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