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Special Review Section: Platelet Microvesicles

Single particle analysis: Methods for detection of platelet extracellular vesicles in suspension (excluding flow cytometry)

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Pages 249-255 | Received 30 Jul 2016, Accepted 19 Oct 2016, Published online: 29 Dec 2016

References

  • D’Souza-Schorey C, Di Vizio D. Biology and proteomics of extracellular vesicles: harnessing their clinical potential. Exp Rev Proteomics 2014;11(3):251–253.
  • van der Pol E, Coumans FAW, Grootemaat AE, Gardiner C, Sargent IL, Harrison P, Sturk A, van Leeuwen TG, Nieuwland R. Particle size distribution of exosomes and microvesicles determined by transmission electron microscopy, flow cytometry, nanoparticle tracking analysis, and resistive pulse sensing. J Thromb Haemost 2014;12(7):1182–1192.
  • Gardiner C, Shaw M, Hole P, Smith J, Tannetta D, Redman CW, Sargent IL. Measurement of refractive index by nanoparticle tracking analysis reveals heterogeneity in extracellular vesicles. J Extracell Vesicles 2014;3:25361.
  • Sodar BW, Kittel A, Paloczi K, Vukman KV, Osteikoetxea X, Szabo-Taylor K, Nemeth A, Sperlagh B, Baranyai T, Giricz Z et al. Low-density lipoprotein mimics blood plasma-derived exosomes and microvesicles during isolation and detection. Sci Rep 2016;6.
  • Gyorgy B, Modos K, Pallinger E, Paloczi K, Pasztoi M, Misjak P, Deli MA, Sipos A, Szalai A, Voszka I et al. Detection and isolation of cell-derived microparticles are compromised by protein complexes resulting from shared biophysical parameters. Blood 2011;117(4):E39–E48.
  • Dragovic RA, Southcombe JH, Tannetta DS, Redman CW, Sargent IL. Multicolor flow cytometry and nanoparticle tracking analysis of extracellular vesicles in the plasma of normal pregnant and pre-eclamptic women. Biol Reprod 2013;89(6):151.
  • Wolf P. The nature and significance of platelet products in human plasma. Br J Haematol 1967;13(3):269–88.
  • Heijnen HF, Schiel AE, Fijnheer R, Geuze HJ, Sixma JJ. Activated platelets release two types of membrane vesicles: microvesicles by surface shedding and exosomes derived from exocytosis of multivesicular bodies and alpha-granules. Blood 1999;94(11):3791–3799.
  • Italiano JE, Mairuhu ATA, Flaumenhaft R. Clinical relevance of microparticles from platelets and megakaryocytes. Curr Opin Hematol 2010;17(6):578–584.
  • Berckmans RJ, Nieuwland R, Boing AN, Romijn FP, Hack CE, Sturk A. Cell-derived microparticles circulate in healthy humans and support low grade thrombin generation. ThrombHaemost 2001;85(4):639–646.
  • Robert S, Poncelet P, Lacroix R, Arnaud L, Giraudo L, Hauchard A, Sampol J, Dignat-George F. Standardization of platelet-derived microparticle counting using calibrated beads and a Cytomics FC500 routine flow cytometer: a first step towards multicenter studies? J Thromb Haemost 2009;7(1):190–197.
  • Gyorgy B, Paloczi K, Kovacs A, Barabas E, Beko G, Varnai K, Pallinger E, Szabo-Taylor K, Szabo TG, Kiss AA et al. Improved circulating microparticle analysis in acid-citrate dextrose (ACD) anticoagulant tube. Thromb Res 2014;133(2):285–292.
  • Arraud N, Linares R, Tan S, Gounou C, Pasquet JM, Mornet S, Brisson AR. Extracellular vesicles from blood plasma: determination of their morphology, size, phenotype and concentration. J Thromb Haemost 2014;12(5):614–27.
  • Stoner SA, Duggan E, Condello D, Guerrero A, Turk JR, Narayanan PK, Nolan JP. High sensitivity flow cytometry of membrane vesicles. Cytometry A 2016;89(2):196–206.
  • Chandler WL, Yeung W, Tait JF. A new microparticle size calibration standard for use in measuring smaller microparticles using a new flow cytometer. J Thromb Haemost 2011;9(6):1216–1224.
  • Connor DE, Exner T, Ma DDF, Joseph JE. The majority of circulating platelet-derived microparticles fail to bind annexin V, lack phospholipid-dependent procoagulant activity and demonstrate greater expression of glycoprotein Ib. Thromb Haemost 2010;103(5):1044–1052.
  • Flaumenhaft R, Dilks JR, Richardson J, Alden E, Patel-Hett SR, Battinelli E, Klement GL, Sola-Visner M, Italiano JE, Jr. Megakaryocyte-derived microparticles: direct visualization and distinction from platelet-derived microparticles. Blood 2009;113(5):1112–1121.
  • Smalley DM, Root KE, Cho H, Ross MM, Ley K. Proteomic discovery of 21 proteins expressed in human plasma-derived but not platelet-derived microparticles. Thromb Haemost 2007;97(1):67–80.
  • Nurden AT. Platelets, inflammation and tissue regeneration. Thromb Haemost 2011;105(Suppl 1):S13–S33.
  • Hunter MP, Ismail N, Zhang X, Aguda BD, Lee EJ, Yu L, Xiao T, Schafer J, Lee ML, Schmittgen TD et al. Detection of microRNA expression in human peripheral blood microvesicles. PLoS One 2008;3(11):e3694.
  • Laffont B, Corduan A, Ple H, Duchez AC, Cloutier N, Boilard E, Provost P. Activated platelets can deliver mRNA regulatory Ago2*microRNA complexes to endothelial cells via microparticles. Blood 2013;122(2):253–261.
  • Laffont B, Corduan A, Rousseau M, Duchez AC, Lee CH, Boilard E, Provost P. Platelet microparticles reprogram macrophage gene expression and function. Thromb Haemost 2016;115(2):311–323.
  • Liang H, Yan X, Pan Y, Wang Y, Wang N, Li L, Liu Y, Chen X, Zhang CY, Gu H et al. MicroRNA-223 delivered by platelet-derived microvesicles promotes lung cancer cell invasion via targeting tumor suppressor EPB41L3. Mol Cancer 2015;14:58.
  • Saveyn H, De Baets B, Thas O, Hole P, Smith J, Van der Meeren P. Accurate particle size distribution determination by nanoparticle tracking analysis based on 2-D Brownian dynamics simulation. J Colloid Interface Sci 2010;352(2):593–600.
  • van der Pol E, Coumans FAW, Sturk A, Nieuwland R, van Leeuwen TG. Refractive index determination of nanoparticles in suspension using nanoparticle tracking analysis. Nano Lett 2014;14(11):6195–6201.
  • Dragovic RA, Gardiner C, Brooks AS, Tannetta DS, Ferguson DJP, Hole P, Carr B, Redman CWG, Harris AL, Dobson PJ et al. Sizing and phenotyping of cellular vesicles using nanoparticle tracking analysis. Nanomedicine-Nanotechnol Biol Med 2011;7(6):780–788.
  • Gardiner C, Ferreira YJ, Dragovic RA, Redman CW, Sargent IL. Extracellular vesicle sizing and enumeration by nanoparticle tracking analysis. J Extracell Vesicles 2013;2.
  • Chen Y, Cai JY, Xu QC, Chen ZW. Atomic force bio-analytics of polymerization and aggregation of phycoerythrin-conjugated immunoglobulin G molecules. Mol Immunol 2004;41(12):1247–1252.
  • Wang JJ, Zhong Y, Ma XT, Xiao X, Cheng CF, Chen YS, Iwuchukwu I, Gaines KJ, Zhao B, Liu SM et al. Analyses of endothelial cells and endothelial progenitor cells released microvesicles by using microbead and Q-dot based nanoparticle tracking analysis. Sci Rep 2016;6.
  • Sowerby SJ, Broom MF, Petersen GB. Dynamically resizable nanometre-scale apertures for molecular sensing. Sens Actuators B Chem 2007;123(1):325–330.
  • Roberts GS, Kozak D, Anderson W, Broom MF, Vogel R, Trau M. Tunable nano/micropores for particle detection and discrimination: scanning ion occlusion spectroscopy. Small 2010;6(23):2653–2658.
  • Anderson W, Lane R, Korbie D, Trau M. Observations of tunable resistive pulse sensing for exosome analysis: improving system sensitivity and stability. Langmuir 2015;31(23):6577–6587.
  • Maas SLN, de Vrij J, van der Vlist EJ, Geragousian B, van Bloois L, Mastrobattista E, Schiffelers RM, Wauben MHM, Broekman MLD, Nolte-’t Hoen ENM. Possibilities and limitations of current technologies for quantification of biological extracellular vesicles and synthetic mimics. J Controlled Release 2015;200:87–96.
  • Coumans FA, van der Pol E, Boing AN, Hajji N, Sturk G, van Leeuwen TG, Nieuwland R. Reproducible extracellular vesicle size and concentration determination with tunable resistive pulse sensing. J Extracell Vesicles 2014;3:25922.
  • van der Pol E, Coumans F, Varga Z, Krumrey M, Nieuwland R. Innovation in detection of microparticles and exosomes. J Thromb Haemost 2013;11:36–45.
  • Burnouf T, Goubran HA, Chou ML, Devos D, Radosevic M. Platelet microparticles: Detection and assessment of their paradoxical functional roles in disease and regenerative medicine. Blood Rev 2014;28(4):155–166.
  • Lane RE, Korbie D, Anderson W, Vaidyanathan R, Trau M. Analysis of exosome purification methods using a model liposome system and tunable-resistive pulse sensing. Sci Rep 2015;5.
  • Hill AF, Pegtel DM, Lambertz U, Leonardi T, O’Driscoll L, Pluchino S, Ter-Ovanesyan D, Nolte-’t Hoen EN. ISEV position paper: extracellular vesicle RNA analysis and bioinformatics. J Extracell Vesicles 2013;2.
  • Osteikoetxea X, Sodar B, Nemeth A, Szabo-Taylor K, Paloczi K, Vukman KV, Tamasi V, Balogh A, Kittel A, Pallinger E et al. Differential detergent sensitivity of extracellular vesicle subpopulations. Org Biomol Chem 2015;13(38):9775–9782.
  • Osteikoetxea X, Balogh A, Szabo-Taylor K, Nemeth A, Szabo TG, Paloczi K, Sodar B, Kittel A, Gyorgy B, Pallinger E et al. Improved characterization of EV preparations based on protein to lipid ratio and lipid properties. Plos One 2015;10(3).
  • Smith ZJ, Huser TR, Wachsmann-Hogiu S. Raman scattering in pathology. Anal Cell Pathol 2012;35(3):145–163.
  • Ajito K, Torimitsu K. Laser trapping and Raman spectroscopy of single cellular organelles in the nanometer range. Lab Chip 2002;2(1):11–14.
  • Xie CG, Dinno MA, Li YQ. Near-infrared Raman spectroscopy of single optically trapped biological cells. Opt Lett 2002;27(4):249–251.
  • Smith ZJ, Berger AJ. Validation of an integrated Raman- and angular-scattering microscopy system on heterogeneous bead mixtures and single human immune cells. Appl Opt 2009;48(10):D109–D120.
  • Chan JW. Recent advances in laser tweezers Raman spectroscopy (LTRS) for label-free analysis of single cells. J Biophotonics 2013;6(1):36–48.
  • Lavialle F, Deshayes S, Gonnet F, Larquet E, Kruglik SG, Boisset N, Daniel R, Alfsen A, Tatischeff I. Nanovesicles released by Dictyostelium cells: A potential carrier for drug delivery. Int J Pharm 2009; 380 (1–2): 206–215.
  • Tatischeff I, Larquet E, Falcon-Perez JM, Turpin PY, Kruglik SG. Fast characterisation of cell-derived extracellular vesicles by nanoparticles tracking analysis, cryo-electron microscopy, and Raman tweezers microspectroscopy. J Extracell Vesicles 2012;1.
  • Smith ZJ, Lee C, Rojalin T, Carney RP, Hazari S, Knudson A, Lam K, Saari H, Ibanez EL, Viitala T et al. Single exosome study reveals subpopulations distributed among cell lines with variability related to membrane content. J Extracell Vesicles 2015;4:28533.
  • Fleischmann M, Hendra PJ, Mcquilla.Aj. Raman-Spectra of Pyridine Adsorbed at a Silver Electrode. Chem Phys Lett 1974;26(2):163–166.
  • Fan MK, Andrade GFS, Brolo AG. A review on the fabrication of substrates for surface enhanced Raman spectroscopy and their applications in analytical chemistry. Anal Chim Acta 2011; 693 (1–2): 7–25.
  • Lee C, Zhang P. Facile synthesis of gelatin-protected silver nanoparticles for SERS applications. J Raman Spectrosc 2013;44(6):823–826.
  • Kerr LT, Gubbins L, Gorzel KW, Sharma S, Kell M, McCann A, Hennelly BM. Raman spectroscopy and SERS analysis of ovarian tumour derived exosomes (TEXs): a preliminary study. Biophotonics Photonic Solutions Better Health Care Iv 2014;9129.
  • Tirinato L, Gentile F, Di Mascolo D, Coluccio ML, Das G, Liberale C, Pullano SA, Perozziello G, Francardi M, Accardo A et al. SERS analysis on exosomes using super-hydrophobic surfaces. Microelectron Eng 2012;97:337–340.
  • Lee C, Carney RP, Hazari S, Smith ZJ, Knudson A, Robertson CS, Lam KS, Wachsmann-Hogiu S. 3D plasmonic nanobowl platform for the study of exosomes in solution. Nanoscale 2015;7(20):9290–9297.
  • Stremersch S, Marro M, Pinchasik BE, Baatsen P, Hendrix A, De Smedt SC, Loza-Alvarez P, Skirtach AG, Raemdonck K, Braeckmans K. Identification of individual exosome-like vesicles by surface enhanced Raman Spectroscopy. Small 2016.
  • Im H, Shao HL, Park YI, Peterson VM, Castro CM, Weissleder R, Lee H. Label-free detection and molecular profiling of exosomes with a nano-plasmonic sensor. Nat Biotechnol 2014;32(5):490–U219.
  • Zhu L, Wang K, Cui J, Liu H, Bu XL, Ma HL, Wang WZ, Gong H, Lausted C, Hood L et al. Label-free quantitative detection of tumor-derived exosomes through surface plasmon resonance imaging. Anal Chem 2014;86(17):8857–8864.
  • Brolo AG. Plasmonics for future biosensors. Nat Photonics 2012;6(11):709–713.
  • Su J. Label-free single exosome detection using frequency-locked microtoroid optical resonators. ACS Photonics 2015;2(9):1241–1245.
  • Kozak D, Anderson W, Vogel R, Chen S, Antaw F, Trau M. Simultaneous size and zeta-potential measurements of individual nanoparticles in dispersion using size-tunable pore sensors. ACS Nano 2012;6(8):6990–6997.

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