Measuring particle concentration of multimodal synthetic reference materials and extracellular vesicles with orthogonal techniques: Who is up to the challenge?

被引:67
作者
Vogel, Robert [1 ]
Savage, John [2 ]
Muzard, Julien [3 ]
Della Camera, Giacomo [4 ]
Vella, Gabriele [2 ]
Law, Alice [5 ]
Marchioni, Marianne [3 ]
Mehn, Dora [6 ]
Geiss, Otmar [6 ]
Peacock, Ben [5 ]
Aubert, Dimitri [5 ]
Calzolai, Luigi [6 ]
Caputo, Fanny [7 ]
Prina-Mello, Adriele [2 ,8 ]
机构
[1] Univ Queensland, Sch Math & Phys, St Lucia, Qld, Australia
[2] Trinity Coll Dublin, Trinity Translat Med Inst, Dept Clin Med, LBCAM, Dublin, Ireland
[3] IZON Sci Ltd, Christchurch, New Zealand
[4] CNR, Inst Biochem & Cell Biol, Via P Castellino 111, Naples, Italy
[5] Nano FCM Co Ltd, Medicity, Nottingham, England
[6] European Commiss, Joint Res Ctr JRC, Ispra, Italy
[7] SINTEF Ind, Dept Biotechnol & Nanomed, Trondheim, Norway
[8] Trinity Coll Dublin, AMBER Ctr, CRANN Inst, Dublin, Ireland
基金
欧盟地平线“2020”; 爱尔兰科学基金会;
关键词
extracellular vesicles; liposomes; multimodal samples; nanomedicine; orthogonal techniques; particle concentration; particle size distribution; polystyrene;
D O I
10.1002/jev2.12052
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
The measurement of physicochemical properties of polydisperse complex biological samples, for example, extracellular vesicles, is critical to assess their quality, for example, resulting from their production and isolation methods. The community is gradually becoming aware of the need to combine multiple orthogonal techniques to perform a robust characterization of complex biological samples. Three pillars of critical quality attribute characterization of EVs are sizing, concentration measurement and phenotyping. The repeatable measurement of vesicle concentration is one of the key-challenges that requires further efforts, in order to obtain comparable results by using different techniques and assure reproducibility. In this study, the performance of measuring the concentration of particles in the size range of 50-300 nm with complementary techniques is thoroughly investigated in a step-by step approach of incremental complexity. The six applied techniques include multi-angle dynamic light scattering (MADLS), asymmetric flow field flow fractionation coupled with multi-angle light scattering (AF4-MALS), centrifugal liquid sedimentation (CLS), nanoparticle tracking analysis (NTA), tunable resistive pulse sensing (TRPS), and high-sensitivity nano flow cytometry (nFCM). To achieve comparability, monomodal samples and complex polystyrene mixtures were used as particles of metrological interest, in order to check the suitability of each technique in the size and concentration range of interest, and to develop reliable post-processing data protocols for the analysis. Subsequent complexity was introduced by testing liposomes as validation of the developed approaches with a known sample of physicochemical properties closer to EVs. Finally, the vesicles in EV containing plasma samples were analysed with all the tested techniques. The results presented here aim to shed some light into the requirements for the complex characterization of biological samples, as this is a critical need for quality assurance by the EV and regulatory community. Such efforts go with the view to contribute to both, set-up reproducible and reliable characterization protocols, and comply with the Minimal Information for Studies of Extracellular Vesicles (MISEV) requirements.
引用
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页数:28
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