蛋白质组
胞外囊泡
细胞外小泡
细胞外
蛋白质组学
计算生物学
化学
细胞生物学
生物
生物化学
微泡
基因
小RNA
作者
Alexander G. Thompson,Elizabeth Gray,Imre Mäger,Román Fischer,Marie‐Laëtitia Thézénas,Philip D. Charles,Kevin Talbot,Samir EL Andaloussi,Benedikt M. Kessler,Matthew Wood,Martin R. Turner
出处
期刊:Proteomics
[Wiley]
日期:2018-11-09
卷期号:18 (24)
被引量:34
标识
DOI:10.1002/pmic.201800257
摘要
Cerebrospinal fluid (CSF) extracellular vesicles (EVs) show promise as a source of neurological disease biomarkers, although their precise origin is poorly understood. Current extraction techniques produce disappointing yield and purity. This study describes the application of ultrafiltration LC (UFLC) to CSF-EVs, compared with ultracentrifugation (UC), and explores CSF-EV origin. EVs are extracted from human CSF by UC and UFLC and characterized using nanoparticle tracking analysis, electron microscopy, and immunoblotting. EV and CSF proteomes are analyzed by LC-MS/MS. UFLC-isolated particles have size, morphology, and marker expression characteristic of EVs. UFLC provides greater EV yield (UFLC 7.90 × 108 ± SD 1.31 × 108 EVs mL-1 CSF, UC 1.06 × 108 ± 0.57 × 108 p < 0.001). UFLC enhances purity, proteomic depth (UFLC 622 ± 49, UC 298 ± 50, p = 0.001), and consistency of quantification (CV 17% vs 23%). EVs contain more intracellular proteins (Odds ratio [OR] 2.63 p < 0.001) and fewer plasma proteins than CSF (OR 0.60, p < 0.001). CSF and EV-enriched proteomes show overrepresentation of brain-specific proteins (EV OR 3.18, p < 0.001; CSF OR 3.37, p < 0.001). Overrepresentation of cerebral white matter (OR 1.99, p = 0.015) and choroid plexus proteins (OR 1.87, p<0.001) is observed in EVs. UFLC improves yield and purity of CSF-EVs. The EV-enriched proteome better reflects the intracellular and white matter proteome than whole CSF.
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