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Identification of extracellular nanoparticle subsets by nuclear magnetic resonance

Exosomes are a subset of secreted lipid envelope-encapsulated extracellular vesicles (EVs) of 50–150 nm diameter that can transfer cargo from donor to acceptor cells. In the current purification protocols of exosomes, many smaller and larger nanoparticles such as lipoproteins, exomers and microvesic...

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Autores principales: Ullah, Md Sharif, Zhivonitko, Vladimir V., Samoylenko, Anatoliy, Zhyvolozhnyi, Artem, Viitala, Sirja, Kankaanpää, Santeri, Komulainen, Sanna, Schröder, Leif, Vainio, Seppo J., Telkki, Ville-Veikko
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8221169/
https://www.ncbi.nlm.nih.gov/pubmed/34221312
http://dx.doi.org/10.1039/d1sc01402a
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author Ullah, Md Sharif
Zhivonitko, Vladimir V.
Samoylenko, Anatoliy
Zhyvolozhnyi, Artem
Viitala, Sirja
Kankaanpää, Santeri
Komulainen, Sanna
Schröder, Leif
Vainio, Seppo J.
Telkki, Ville-Veikko
author_facet Ullah, Md Sharif
Zhivonitko, Vladimir V.
Samoylenko, Anatoliy
Zhyvolozhnyi, Artem
Viitala, Sirja
Kankaanpää, Santeri
Komulainen, Sanna
Schröder, Leif
Vainio, Seppo J.
Telkki, Ville-Veikko
author_sort Ullah, Md Sharif
collection PubMed
description Exosomes are a subset of secreted lipid envelope-encapsulated extracellular vesicles (EVs) of 50–150 nm diameter that can transfer cargo from donor to acceptor cells. In the current purification protocols of exosomes, many smaller and larger nanoparticles such as lipoproteins, exomers and microvesicles are typically co-isolated as well. Particle size distribution is one important characteristics of EV samples, as it reflects the cellular origin of EVs and the purity of the isolation. However, most of the physicochemical analytical methods today cannot illustrate the smallest exosomes and other small particles like the exomers. Here, we demonstrate that diffusion ordered spectroscopy (DOSY) nuclear magnetic resonance (NMR) method enables the determination of a very broad distribution of extracellular nanoparticles, ranging from 1 to 500 nm. The range covers sizes of all particles included in EV samples after isolation. The method is non-invasive, as it does not require any labelling or other chemical modification. We investigated EVs secreted from milk as well as embryonic kidney and renal carcinoma cells. Western blot analysis and immuno-electron microscopy confirmed expression of exosomal markers such as ALIX, TSG101, CD81, CD9, and CD63 in the EV samples. In addition to the larger particles observed by nanoparticle tracking analysis (NTA) in the range of 70–500 nm, the DOSY distributions include a significant number of smaller particles in the range of 10–70 nm, which are visible also in transmission electron microscopy images but invisible in NTA. Furthermore, we demonstrate that hyperpolarized chemical exchange saturation transfer (Hyper-CEST) with (129)Xe NMR indicates also the existence of smaller and larger nanoparticles in the EV samples, providing also additional support for DOSY results. The method implies also that the Xe exchange is significantly faster in the EV pool than in the lipoprotein/exomer pool.
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spelling pubmed-82211692021-07-02 Identification of extracellular nanoparticle subsets by nuclear magnetic resonance Ullah, Md Sharif Zhivonitko, Vladimir V. Samoylenko, Anatoliy Zhyvolozhnyi, Artem Viitala, Sirja Kankaanpää, Santeri Komulainen, Sanna Schröder, Leif Vainio, Seppo J. Telkki, Ville-Veikko Chem Sci Chemistry Exosomes are a subset of secreted lipid envelope-encapsulated extracellular vesicles (EVs) of 50–150 nm diameter that can transfer cargo from donor to acceptor cells. In the current purification protocols of exosomes, many smaller and larger nanoparticles such as lipoproteins, exomers and microvesicles are typically co-isolated as well. Particle size distribution is one important characteristics of EV samples, as it reflects the cellular origin of EVs and the purity of the isolation. However, most of the physicochemical analytical methods today cannot illustrate the smallest exosomes and other small particles like the exomers. Here, we demonstrate that diffusion ordered spectroscopy (DOSY) nuclear magnetic resonance (NMR) method enables the determination of a very broad distribution of extracellular nanoparticles, ranging from 1 to 500 nm. The range covers sizes of all particles included in EV samples after isolation. The method is non-invasive, as it does not require any labelling or other chemical modification. We investigated EVs secreted from milk as well as embryonic kidney and renal carcinoma cells. Western blot analysis and immuno-electron microscopy confirmed expression of exosomal markers such as ALIX, TSG101, CD81, CD9, and CD63 in the EV samples. In addition to the larger particles observed by nanoparticle tracking analysis (NTA) in the range of 70–500 nm, the DOSY distributions include a significant number of smaller particles in the range of 10–70 nm, which are visible also in transmission electron microscopy images but invisible in NTA. Furthermore, we demonstrate that hyperpolarized chemical exchange saturation transfer (Hyper-CEST) with (129)Xe NMR indicates also the existence of smaller and larger nanoparticles in the EV samples, providing also additional support for DOSY results. The method implies also that the Xe exchange is significantly faster in the EV pool than in the lipoprotein/exomer pool. The Royal Society of Chemistry 2021-04-29 /pmc/articles/PMC8221169/ /pubmed/34221312 http://dx.doi.org/10.1039/d1sc01402a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Ullah, Md Sharif
Zhivonitko, Vladimir V.
Samoylenko, Anatoliy
Zhyvolozhnyi, Artem
Viitala, Sirja
Kankaanpää, Santeri
Komulainen, Sanna
Schröder, Leif
Vainio, Seppo J.
Telkki, Ville-Veikko
Identification of extracellular nanoparticle subsets by nuclear magnetic resonance
title Identification of extracellular nanoparticle subsets by nuclear magnetic resonance
title_full Identification of extracellular nanoparticle subsets by nuclear magnetic resonance
title_fullStr Identification of extracellular nanoparticle subsets by nuclear magnetic resonance
title_full_unstemmed Identification of extracellular nanoparticle subsets by nuclear magnetic resonance
title_short Identification of extracellular nanoparticle subsets by nuclear magnetic resonance
title_sort identification of extracellular nanoparticle subsets by nuclear magnetic resonance
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8221169/
https://www.ncbi.nlm.nih.gov/pubmed/34221312
http://dx.doi.org/10.1039/d1sc01402a
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