Effect of the 35 nm and 70 nm Size Exclusion Chromatography (SEC) Column and Plasma Storage Time on Separated Extracellular Vesicles

Author:

György Bernadett1ORCID,Pálóczi Krisztina2ORCID,Balbisi Mirjam3ORCID,Turiák Lilla3ORCID,Drahos László3ORCID,Visnovitz Tamás24ORCID,Koltai Erika1,Radák Zsolt15ORCID

Affiliation:

1. Research Centre for Molecular Exercise Science, Hungarian University of Sport Science, Alkotás u. 42-48, 1123 Budapest, Hungary

2. Department of Genetics, Cell and Immunobiology, Semmelweis University, Üllői út 26, 1085 Budapest, Hungary

3. Research Centre for Natural Sciences, Institute of Organic Chemistry, Magyar Tudósok Körútja 2, 1117 Budapest, Hungary

4. Department of Plant Physiology and Molecular Plant Biology, ELTE Eötvös Loránd University, Pázmány Péter sétány 1/c, 1117 Budapest, Hungary

5. Faculty of Sport Sciences, Waseda University, Tokorozawa 2-579-15, Japan

Abstract

The technical difficulty of separating extracellular vesicles (EVs) from plasma proteins in human blood presents a significant hurdle in EV research, particularly during nano ultra-high-performance liquid chromatography–tandem mass spectrometric (UHPLC-MS/MS) analysis, where detecting “vesicular” proteins among abundant plasma proteins is challenging. Standardisation is a pressing issue in EV research, prompting collaborative global efforts to address it. While the MISEV guidelines offer valuable recommendations, unanswered questions remain, particularly regarding sample storage. We compared size exclusion chromatography (SEC) columns with pore sizes of 35 nm and 70 nm to identify fractions with minimal contaminating proteins and the highest concentration of small EVs (sEVs). Following column selection, we explored potential differences in the quality and quantity of sEVs isolated from platelet-free plasma (PFP) after long-term storage at −80 °C (>2.5 years) compared to freshly drawn blood. Our methodologically rigorous study indicates that prolonged storage, under correct storage and processing conditions, does not compromise sEV quality. Both columns effectively isolated vesicles, with the 70 nm column exhibiting a higher abundance of “vesicular” proteins. We propose a relatively rapid and moderately efficient protocol for obtaining a comparatively pure sEV fraction from plasma, facilitating sEV processing in clinical trials.

Funder

Hungarian National Research, Development and Innovation Office

Semmelweis Innovation Fund

Higher Education Excellence Program

National Cardiovascular Laboratory Program

EU’s Horizon 2020 Research and Innovation Programme

New National Excellence Program, and the Scientific Excellence Program

Hungarian University Sport Science, Innovation and Technology Ministry, Hungary

National Science and Research Foundation, Hungary

Publisher

MDPI AG

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