Selective isolation of extracellular vesicles from minimally processed human plasma as a translational strategy for liquid biopsies

被引:26
作者
Fortunato, Diogo [1 ]
Giannoukakos, Stavros [2 ]
Gimenez-Capitan, Ana [3 ]
Hackenberg, Michael [2 ]
Molina-Vila, Miguel A. [3 ]
Zarovni, Natasa [1 ]
机构
[1] Exosomics SpA, I-53100 Siena, Italy
[2] Univ Granada, Dept Genet, Granada, Spain
[3] Pangaea Oncol, Lab Oncol, Barcelona, Spain
关键词
Extracellular vesicle; Immunoprecipitation; Liquid biopsy; Enrichment; Platelet; Plasma; Early-stage cancer; GLYCOPROTEIN-IIB; EXOSOMES; PROTEOME; CELLS; MICROVESICLES; POPULATIONS; FIBRINOGEN; SEPARATION; MELANOMA; BLOOD;
D O I
10.1186/s40364-022-00404-1
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Background Intercellular communication is mediated by extracellular vesicles (EVs), as they enclose selectively packaged biomolecules that can be horizontally transferred from donor to recipient cells. Because all cells constantly generate and recycle EVs, they provide accurate timed snapshots of individual pathophysiological status. Since blood plasma circulates through the whole body, it is often the biofluid of choice for biomarker detection in EVs. Blood collection is easy and minimally invasive, yet reproducible procedures to obtain pure EV samples from circulating biofluids are still lacking. Here, we addressed central aspects of EV immunoaffinity isolation from simple and complex matrices, such as plasma. Methods Cell-generated EV spike-in models were isolated and purified by size-exclusion chromatography, stained with cellular dyes and characterized by nano flow cytometry. Fluorescently-labelled spike-in EVs emerged as reliable, high-throughput and easily measurable readouts, which were employed to optimize our EV immunoprecipitation strategy and evaluate its performance. Plasma-derived EVs were captured and detected using this straightforward protocol, sequentially combining isolation and staining of specific surface markers, such as CD9 or CD41. Multiplexed digital transcript detection data was generated using the Nanostring nCounter platform and evaluated through a dedicated bioinformatics pipeline. Results Beads with covalently-conjugated antibodies on their surface outperformed streptavidin-conjugated beads, coated with biotinylated antibodies, in EV immunoprecipitation. Fluorescent EV spike recovery evidenced that target EV subpopulations can be efficiently retrieved from plasma, and that their enrichment is dependent not only on complex matrix composition, but also on the EV surface phenotype. Finally, mRNA profiling experiments proved that distinct EV subpopulations can be captured by directly targeting different surface markers. Furthermore, EVs isolated with anti-CD61 beads enclosed mRNA expression patterns that might be associated to early-stage lung cancer, in contrast with EVs captured through CD9, CD63 or CD81. The differential clinical value carried within each distinct EV subset highlights the advantages of selective isolation. Conclusions This EV isolation protocol facilitated the extraction of clinically useful information from plasma. Compatible with common downstream analytics, it is a readily implementable research tool, tailored to provide a truly translational solution in routine clinical workflows, fostering the inclusion of EVs in novel liquid biopsy settings.
引用
收藏
页数:24
相关论文
共 84 条
[21]  
HOUSSEIN I, 1985, CLIN CHEM, V31, P2028
[22]   Liquid biopsy enters the clinic - implementation issues and future challenges [J].
Ignatiadis, Michail ;
Sledge, George W. ;
Jeffrey, Stefanie S. .
NATURE REVIEWS CLINICAL ONCOLOGY, 2021, 18 (05) :297-312
[23]   Label-free detection and molecular profiling of exosomes with a nano-plasmonic sensor [J].
Im, Hyungsoon ;
Shao, Huilin ;
Park, Yong Il ;
Peterson, Vanessa M. ;
Castro, Cesar M. ;
Weissleder, Ralph ;
Lee, Hakho .
NATURE BIOTECHNOLOGY, 2014, 32 (05) :490-U219
[24]   Exosomal proteins as potential diagnostic markers in advanced non-small cell lung carcinoma [J].
Jakobsen, Kristine R. ;
Paulsen, Birgitte S. ;
Baek, Rikke ;
Varming, Kim ;
Sorensen, Boe S. ;
Jorgensen, Malene M. .
JOURNAL OF EXTRACELLULAR VESICLES, 2015, 4 :1-10
[25]  
JENNINGS LK, 1982, J BIOL CHEM, V257, P458
[26]   Different types of in vitro generated human monocyte-derived dendritic cells release exosomes with distinct phenotypes [J].
Johansson, Sara M. ;
Admyre, Charlotte ;
Scheynius, Annika ;
Gabrielsson, Susanne .
IMMUNOLOGY, 2008, 123 (04) :491-499
[27]   What is the blood concentration of extracellular vesicles? Implications for the use of extracellular vesicles as blood-borne biomarkers of cancer [J].
Johnsen, Kasper Bendix ;
Gudbergsson, Johann Mar ;
Andresen, Thomas Lars ;
Simonsen, Jens Baek .
BIOCHIMICA ET BIOPHYSICA ACTA-REVIEWS ON CANCER, 2019, 1871 (01) :109-116
[28]   Extracellular Vesicle (EV) Array: microarray capturing of exosomes and other extracellular vesicles for multiplexed phenotyping [J].
Jorgensen, Malene ;
Baek, Rikke ;
Pedersen, Shona ;
Sondergaard, Evo K. L. ;
Kristensen, Soren R. ;
Varming, Kim .
JOURNAL OF EXTRACELLULAR VESICLES, 2013, 2 (01)
[29]   Microfluidic device (ExoChip) for on-chip isolation, quantification and characterization of circulating exosomes [J].
Kanwar, Shailender Singh ;
Dunlay, Christopher James ;
Simeone, Diane M. ;
Nagrath, Sunitha .
LAB ON A CHIP, 2014, 14 (11) :1891-1900
[30]   Detailed analysis of the plasma extracellular vesicle proteome after separation from lipoproteins [J].
Karimi, Nasibeh ;
Cvjetkovic, Aleksander ;
Jang, Su Chul ;
Crescitelli, Rossella ;
Feizi, Mohammad Ali Hosseinpour ;
Nieuwland, Rienk ;
Lotvall, Jan ;
Lasser, Cecilia .
CELLULAR AND MOLECULAR LIFE SCIENCES, 2018, 75 (15) :2873-2886