4.8 Article

Characterization and modulation of surface charges to enhance extracellular vesicle isolation in plasma

期刊

THERANOSTICS
卷 12, 期 5, 页码 1988-1998

出版社

IVYSPRING INT PUBL
DOI: 10.7150/thno.69094

关键词

extracellular vesicles; lipoproteins; surface charge modulation; size-exclusion; cancer

资金

  1. NIH [R01CA229777, R21DA049577, R01CA239078, R01CA 237500, U01CA233360, R01CA264363]
  2. MGH Scholar Fund
  3. [US DOD-W81XWH1910199]
  4. [DOD-W81XWH1910194]

向作者/读者索取更多资源

Extracellular vesicles (EVs) have the potential for disease diagnosis, but are often contaminated by low density lipoproteins (LDLs) when isolated from blood. By studying the difference in electric charge between EVs and LDLs, we developed a method using ion-exchange chromatography to separate EVs from LDLs. This finding improved the analytical signals in EV molecular assays.
Extracellular vesicles (EVs) carry information inherited from parental cells, having significant potential for disease diagnosis. In blood, however, EVs are outnumbered >104-fold by low density lipoproteins (LDLs), yet similar in size and density. These fundamental disadvantages often cause LDL spillover into EV isolates, thus confounding assay results. We hypothesized that EVs can be further separated from LDLs based on electric charge: EVs and LDLs have different lipid composition, which can lead to differential surface charge densities. To test this hypothesis, we modeled and quantified the surface charge of EVs and LDLs, and used the information to optimally separate EVs from LDLs via ion-exchange chromatography. Methods: We built an enhanced dual-mode chromatography (eDMC) device which performed i) size-exclusion to remove particles smaller than EVs and LDLs and ii) cation-exchange in an acidic elution to retain LDLs longer than EVs. The performance of the eDMC, in comparison to size-exclusion only, was evaluated by analyzing the yield and purity of the isolated EVs. Results: By measuring and modeling zeta potentials at different buffer pH, we estimated surface charge densities of EVs (-6.2 mC/m(2)) and LDLs (-3.6 mC/m(2)), revealing that EVs are more negatively charged than LDLs. Furthermore, the charge difference between EVs and LDLs was maximal at a weak acidic condition (pH = 6.4). By applying these findings, we optimized eDMC operation to enrich EVs directly from plasma, depleting >99.8% of LPPs within 30 min. Minimizing LDL contamination improved analytical signals in EV molecular assays, including single vesicle imaging, bulk protein measurements, and mRNA detection. Conclusions: These developments will promote the translational value of the dual-mode separation - a fast, equipment-free, and non-biased way for EV isolation from plasma samples.

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