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http://dx.doi.org/10.5851/kosfa.2017.37.5.654

Evaluation and Characterization of Milk-derived Microvescicle Isolated from Bovine Colostrum  

Maburutse, Brighton E. (Department of Animal Science and Institute of Milk Genomics, Chonbuk National University)
Park, Mi-Ri (Department of Animal Science and Institute of Milk Genomics, Chonbuk National University)
Oh, Sangnam (Department of Functional Food and Biotechnology, Jeonju University)
Kim, Younghoon (Department of Animal Science and Institute of Milk Genomics, Chonbuk National University)
Publication Information
Food Science of Animal Resources / v.37, no.5, 2017 , pp. 654-662 More about this Journal
Abstract
Extracellular microvesicles are membranous nano-sized cellular organelles secreted by a variety of cells under normal and pathological conditions and heterogeneous in size ranging from 30 nm to $1{\mu}m$. They carry functional microRNAs that can influence immunity and development. For a particular application of microvesicles, choice of isolation method is particularly important; however, their isolation methods from colostrum in particular have not been described clearly. In this work, differential ultracentrifugation as a conventional method, ultracentrifugation with some modification such as additional precipitations, ultrafiltration, sucrose gradient separation and ExoQuick$^{TM}$ as a commercial reagent were compared. The goal was to compare mainly microvesicular total microRNA yield, distribution and purity among the methods then select the best isolation method for bovine colostrum microvesicles based largely on microRNA yield with the view of applying the vesicles in work where vesicular microRNA cargo is the target bioactive component. Highest yields for vesicular microRNA were obtained using conventional methods and among them, subsequent ultracentrifugation with 100,000 g and 135,000 g conventional method 2 was selected as it had the highest RNA to protein ratio indicating that it pelleted the least protein in relation to RNA an important factor for in vivo applications to assess microvesicle functionalities without risk of contaminating non-vesicular biomaterial. Microvesicles isolated using conventional method 2 were successfully internalized by cells in vitro showing their potential to deliver their cargo into cells in vitro and in vivo in case of functional studies.
Keywords
bovine colostrum; microvesicles; microRNA; SEM; internalization;
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1 Keller, S., Rupp, C., Stoeck, A., Runz, S., Fogel, M., Lugert, S., Hager, H. D., Abdel-Bakky, M. S., Gutwein, P., and Altevogt, P. (2007) CD24 is a marker of exosomes secreted into urine and amniotic fluid. Kidney Int. 72, 1095-1102.   DOI
2 Lobb, R. J., Becker, M., Wen Wen, S., Wong, C. S. F., Wiegmans, A. P., Leimgruber, A., and Moller, A. (2015) Optimized exosome isolation protocol for cell culture supernatant and human plasma. J. Extracellular Vesicles 4, 27031.   DOI
3 Mathivanan, S. and Simpson, R. J. (2009) ExoCarta: A compendium of exosomal proteins and RNA. Proteomics 9, 4997-5000.   DOI
4 Momen-Heravi, F., Balaj, L., Alian, S., Trachtenberg, A. J., Hochberg, F. H., Skog, J., and Kuo, W. P. (2012) Impact of biofluid viscosity on size and sedimentation efficiency of the isolated microvesicles. Front. Physiol. 3, 162.
5 Peterson, M. F., Otoc, N., Sethi, J. K., Gupta, A., and Antes, T. J. (2015) Integrated systems for exosome investigation. Methods 87, 31-45.   DOI
6 Pisitkun, T., Shen, R.-F., and Knepper, M. A. (2004) Identification and proteomic profiling of exosomes in human urine. Proc. Natl. Acad. Sci. USA 101, 13368-13373.   DOI
7 Rekker, K., Saare, M., Roost, A. M., Kubo, A.-L., Zarovni, N., Chiesi, A., Salumets, A., and Peters, M. (2014) Comparison of serum exosome isolation methods for microRNA profiling. Clin. Biochem. 47, 135-138.
8 Tauro, B. J., Greening, D. W., Mathias, R. A., Ji, H., Mathivanan, S., Scott, A. M., and Simpson, R. J. (2012) Comparison of ultracentrifugation, density gradient separation, and immunoaffinity capture methods for isolating human colon cancer cell line LIM1863-derived exosomes. Methods 56, 293-304.   DOI
9 Xiao, Z., Blonder, J., Zhou, M., and Veenstra, T. D. (2009) Prteomic analysis of extracellular matrix and vesicles. J. Proteomics 72, 34-45.   DOI
10 Yamada, T., Inoshima, Y., Matsuda, T., and Ishiguro, N. (2012) Comparison of methods for isolating exosomes from bovine milk. J. Vet. Med. Sci. 74, 1523-1525.   DOI
11 Yuana, Y., Bertina, R. M., and Osanto, S. (2011) Pre-analytical and analytical issues in the analysis of blood microparticles. Thrombosis and Haemostasis 105, 396.   DOI
12 Cvjetkovic, A., Lotvall, J., and Lasser, C. (2014) The influence of rotor type and centrifugation time on the yield and purity of extracellular vesicles. J. Extracellular Vesicles 3, 23111. DOI: 10.3402/jev.v3.23111   DOI
13 Admyre, C., Johansson, S. M., Qazi, K. R., Filen, J.-J., Lahesmaa, R., Norman, M., Neve, E. P. A., Scheynius, A., and Gabrielsson, S. (2007) Exosomes with immune modulatory features are present in human breast milk. J. Immunol. 179, 1969-1978.   DOI
14 Alvarez, M. L., Khosroheidari, M., Ravi, R. K., and DiStefano, J. K. (2012) Comparison of protein, microRNA, and mRNA yields using different methods of urinary exosome isolation for the discovery of kidney disease biomarkers. Kidney Int. 82, 1024-1032.   DOI
15 Caby, M.-P., Lankar, D., Vincendeau-Scherrer, C., Raposo, G., and Bonnerot, C. (2005) Exosomal-like vesicles are present in human blood plasma. Int. Immunol. 17, 879-887.   DOI
16 Dimov, I., Jankovic Velickovic, L., and Stefanovic, V. (2009) Urinary exosomes. SCI World J. 9, 1107-1118.   DOI
17 Hata, T., Murakami, K., Nakatani, H., Yamamoto, Y., Matsuda, T., and Aoki, N. (2010) Isolation of bovine milk-derived microvesicles carrying mRNAs and microRNAs. Biochem. Biophys. Res. Commun. 396, 528-533.   DOI
18 Ekstrom, K., Valadi, H., Sjostrand, M., Malmhall, C., Bossios, A., Eldh, M., and Lotvall, J. (2012) Characterization of mRNA and microRNA in human mast cell-derived exosomes and their transfer to other mast cells and blood CD34 progenitor cells. J. Extracellular Vesicles 1, 18389. DOI:10.3402/jev.v1i0.18389   DOI