Precipitation-based extracellular vesicle isolation from rat plasma co-precipitate vesicle-free microRNAs

被引:91
作者
Karttunen, Jenni [1 ]
Heiskanen, Mette [1 ]
Navarro-Ferrandis, Vicente [1 ]
Das Gupta, Shalini [1 ]
Lipponen, Anssi [1 ]
Puhakka, Noora [1 ]
Rilla, Kirsi [2 ]
Koistinen, Arto [3 ]
Pitkanen, Asla [1 ]
机构
[1] Univ Eastern Finland, AI Virtanen Inst Mol Sci, Kuopio, Finland
[2] Univ Eastern Finland, Inst Biomed, Kuopio, Finland
[3] Univ Eastern Finland, SIB Labs, Kuopio, Finland
基金
芬兰科学院;
关键词
Extracellular vesicle; extracellular vesicle isolation; plasma; precipitation; miRNA; ddPCR; size-exclusion chromatography; EXOSOMES; SERUM; RNA;
D O I
10.1080/20013078.2018.1555410
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
The microRNA (miRNA) cargo contained in plasma extracellular vesicles (EVs) offers a relatively little explored source of biomarkers for brain diseases that can be obtained noninvasively. Methods to isolate EVs from plasma, however, are still being developed. For EV isolation, it is important to ensure the removal of vesicle-free miRNAs, which account for approximately two-thirds of plasma miRNAs. Membrane particle precipitation-based EV isolation is an appealing method because of the simple protocol and high yield. Here, we evaluated the performance of a precipitation-based method to obtain enriched EV-specific miRNAs from a small volume of rat plasma. We performed size-exclusion chromatography (SEC) on precipitation-isolated EV pellets and whole plasma. The SEC fractions were analysed using Nanoparticle Tracking Analysis (NTA), protein and miRNA concentration assays, and droplet digital polymerase chain reaction for four miRNAs (miR-142-3p, miR-124-3p, miR-23a, miR-122). Precipitation-isolated EVs and selected SEC fractions from the plasma were also analysed with transmission electron microscopy (TEM). Precipitation-based EV isolation co-precipitated 9% to 15% of plasma proteins and 21% to 99% of vesicle-free miRNAs, depending on the individual miRNAs. In addition, the amount of miR-142-3p, found mainly in EV fractions, was decreased in the EV fractions, indicating that part of it was lost during precipitation-based isolation. Western blot and TEM revealed both protein and lipoprotein contamination in the precipitation-isolated EV-pellets. Our findings indicate that a precipitation-based method is not sufficient for purifying plasma EV-contained miRNA cargo. The particle number measured by NTA is high, but this is mostly due to the contaminating lipoproteins. Although a part of the vesicle-free miRNA is removed, vesicle-free miRNA still dominates in plasma EV pellets isolated by the precipitation-based method.
引用
收藏
页数:10
相关论文
共 33 条
  • [1] Armand-Labit Virginie, 2017, BioMolecular Concepts, V8, P61, DOI 10.1515/bmc-2017-0002
  • [2] Argonaute2 complexes carry a population of circulating microRNAs independent of vesicles in human plasma
    Arroyo, Jason D.
    Chevillet, John R.
    Kroh, Evan M.
    Ruf, Ingrid K.
    Pritchard, Colin C.
    Gibson, Donald F.
    Mitchell, Patrick S.
    Bennett, Christopher F.
    Pogosova-Agadjanyan, Era L.
    Stirewalt, Derek L.
    Tait, Jonathan F.
    Tewari, Muneesh
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2011, 108 (12) : 5003 - 5008
  • [3] Single-step isolation of extracellular vesicles by size-exclusion chromatography
    Boing, Anita N.
    van der Pol, Edwin
    Grootemaat, Anita E.
    Coumans, Frank A. W.
    Sturk, Auguste
    Nieuwland, Rienk
    [J]. JOURNAL OF EXTRACELLULAR VESICLES, 2014, 3 (01)
  • [4] Evaluation of serum extracellular vesicle isolation methods for profiling miRNAs by next-generation sequencing
    Buschmann, Dominik
    Kirchner, Benedikt
    Hermann, Stefanie
    Maerte, Melanie
    Wurmser, Christine
    Brandes, Florian
    Kotschote, Stefan
    Bonin, Michael
    Steinlein, Ortrud K.
    Pfaffl, Michael W.
    Schelling, Gustav
    Reithmair, Marlene
    [J]. JOURNAL OF EXTRACELLULAR VESICLES, 2018, 7 (01)
  • [5] Circulating microRNAs as Potential Biomarkers of infectious Disease
    Correia, Carolina N.
    Nalpas, Nicolas C.
    McLoughlin, Kirsten E.
    Browne, John A.
    Gordon, Stephen V.
    MacHugh, David E.
    Shaughnessy, Ronan G.
    [J]. FRONTIERS IN IMMUNOLOGY, 2017, 8
  • [6] Evaluation of optimal extracellular vesicle small RNA isolation and qRT-PCR normalisation for serum and urine
    Crossland, Rachel E.
    Norden, Jean
    Bibby, Louis A.
    Davis, Joanna
    Dickinson, Anne M.
    [J]. JOURNAL OF IMMUNOLOGICAL METHODS, 2016, 429 : 39 - 49
  • [7] Comparison of commercial exosome isolation kits for circulating exosomal microRNA profiling
    Ding, Meng
    Wang, Cheng
    Lu, Xiaolan
    Zhang, Cuiping
    Zhou, Zhen
    Chen, Xi
    Zhang, Chen-Yu
    Zen, Ke
    Zhang, Chunni
    [J]. ANALYTICAL AND BIOANALYTICAL CHEMISTRY, 2018, 410 (16) : 3805 - 3814
  • [8] Techniques used for the isolation and characterization of extracellular vesicles: results of a worldwide survey
    Gardiner, Chris
    Di Vizio, Dolores
    Sahoo, Susmita
    Thery, Clotilde
    Witwer, Kenneth W.
    Wauben, Marca
    Hill, Andrew F.
    [J]. JOURNAL OF EXTRACELLULAR VESICLES, 2016, 5
  • [9] Extracellular vesicle sizing and enumeration by nanoparticle tracking analysis
    Gardiner, Chris
    Ferreira, Yannick J.
    Dragovic, Rebecca A.
    Redman, Christopher W. G.
    Sargent, Ian L.
    [J]. JOURNAL OF EXTRACELLULAR VESICLES, 2013, 2 (01):
  • [10] A Comparative Study of Serum Exosome Isolation Using Differential Ultracentrifugation and Three Commercial Reagents
    Helwa, Inas
    Cai, Jingwen
    Drewry, Michelle D.
    Zimmerman, Arthur
    Dinkins, Michael B.
    Khaled, Mariam Lotfy
    Seremwe, Mutsa
    Dismuke, W. Michael
    Bieberich, Erhard
    Stamer, W. Daniel
    Hamrick, Mark W.
    Liu, Yutao
    [J]. PLOS ONE, 2017, 12 (01):