Wouter Woud

Isolation-Free Measurement of Single Urinary Extracellular Vesicles by Imaging Flow Cytometry 4 107 30. Van Deun J, Mestdagh P, Agostinis P, Akay Ö, Anand S, Anckaert J, et al. EV-TRACK: transparent reporting and centralizing knowledge in extracellular vesicle research. Nat Methods 2017 143. 2017;14(3):228-232. doi:10.1038/nmeth.4185 31. van der Pol E, Coumans FAW, Grootemaat AE, Gardiner C, Sargent IL, Harrison P, et al. 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. doi:10.1111/jth.12602 32. Duijvesz D, Versluis CYL, Van Der Fels CAM, Vredenbregt-Van Den Berg MS, Leivo J, Peltola MT, et al. Immuno-based detection of extracellular vesicles in urine as diagnostic marker for prostate cancer. Int J Cancer. 2015;137(12):2869-2878. doi:10.1002/ijc.29664 33. Welsh JA, Van Der Pol E, Arkesteijn GJA, Bremer M, Brisson A, Coumans F, et al. MIFlowCytEV: a framework for standardized reporting of extracellular vesicle flow cytometry experiments. J Extracell Vesicles. 2020;9(1). doi:10.1080/20013078.2020.1713526 34. Rampoldi L, Scolari F, Amoroso A, Ghiggeri G, Devuyst O. The rediscovery of uromodulin (Tamm-Horsfall protein): From tubulointerstitial nephropathy to chronic kidney disease. Kidney Int. 2011;80(4):338-347. doi:10.1038/ki.2011.134 35. Lozano-Ramos I, Bancu I, Oliveira-Tercero A, Armengol MP, Menezes-Neto A, Del Portillo HA, et al. Size-exclusion chromatography-based enrichment of extracellular vesicles from urine samples. J Extracell Vesicles. 2015;4(2015):1-11. doi:10.3402/jev.v4.27369 36. Crivianu-Gaita V, Romaschin A, Thompson M. High efficiency reduction capability for the formation of Fab’ antibody fragments from F(ab)2 units. Biochem Biophys Reports. 2015;2:23-28. doi:10.1016/j.bbrep.2015.04.004 37. van der Pol E, de Rond L, Coumans FAW, Gool EL, Böing AN, Sturk A, et al. Absolute sizing and label-free identification of extracellular vesicles by flow cytometry. Nanomedicine Nanotechnology, Biol Med. 2018;14(3):801-810. doi:10.1016/j.nano.2017.12.012 38. Liu Y, Li S, Rong W, Zeng C, Zhu X, Chen Q, et al. Podocyte-Released Migrasomes in Urine Serve as an Indicator for Early Podocyte Injury. Kidney Dis (Basel, Switzerland). 2020;6(6):422-433. doi:10.1159/000511504 39. Birková A, Oboril J, Kréta R, Čižmárová B, Hubková B, Šteffeková Z, et al. Human fluorescent profile of urine as a simple tool of mining in data from autofluorescence spectroscopy. Biomed Signal Process Control. 2020;56:101693. doi:10.1016/J.BSPC.2019.101693 40. Hong G, Antaris AL, Dai H. Near-infrared fluorophores for biomedical imaging. Nat Biomed Eng. 2017;1(1):1-22. doi:10.1038/s41551-016-0010 41. Gankema AAF, Li B, Nieuwland R, Pol E van der. Automated fluorescence gating and size determination reduce variation in measured concentration of extracellular vesicles by flow cytometry. Cytom Part A. Published online 2022. doi:10.1002/cyto.a.24665 42. Correll VL, Otto JJ, Risi CM, Main BP, Boutros PC, Kislinger T, et al. Optimization of small extracellular vesicle isolation from expressed prostatic secretions in urine for in-depth proteomic analysis. J Extracell Vesicles. 2022;11(2). doi:10.1002/jev2.12184 43. Li Y, Nese A, Lebedeva N V., Davis T, Matyjaszewski K, Sheiko SS. Molecular tensile machines: Intrinsic acceleration of disulfide reduction by dithiothreitol. J Am Chem Soc. 2011;133(43):17479-17484. doi:10.1021/ja207491r

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