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Electrostatically Stabilized Magnetic Nanoparticles – An Optimized Protocol to Label Murine T Cells for in vivo MRI

We present a novel highly efficient protocol to magnetically label T cells applying electrostatically stabilized very small superparamagnetic iron oxide particles (VSOP). Our long-term aim is to use magnetic resonance imaging (MRI) to investigate T cell dynamics in vivo during the course of neuroinf...

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Autores principales: Wuerfel, Eva, Smyth, Maureen, Millward, Jason M., Schellenberger, Eyk, Glumm, Jana, Prozorovski, Timour, Aktas, Orhan, Schulze-Topphoff, Ulf, Schnorr, Jörg, Wagner, Susanne, Taupitz, Matthias, Infante-Duarte, Carmen, Wuerfel, Jens
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Research Foundation 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3240893/
https://www.ncbi.nlm.nih.gov/pubmed/22203815
http://dx.doi.org/10.3389/fneur.2011.00072
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author Wuerfel, Eva
Smyth, Maureen
Millward, Jason M.
Schellenberger, Eyk
Glumm, Jana
Prozorovski, Timour
Aktas, Orhan
Schulze-Topphoff, Ulf
Schnorr, Jörg
Wagner, Susanne
Taupitz, Matthias
Infante-Duarte, Carmen
Wuerfel, Jens
author_facet Wuerfel, Eva
Smyth, Maureen
Millward, Jason M.
Schellenberger, Eyk
Glumm, Jana
Prozorovski, Timour
Aktas, Orhan
Schulze-Topphoff, Ulf
Schnorr, Jörg
Wagner, Susanne
Taupitz, Matthias
Infante-Duarte, Carmen
Wuerfel, Jens
author_sort Wuerfel, Eva
collection PubMed
description We present a novel highly efficient protocol to magnetically label T cells applying electrostatically stabilized very small superparamagnetic iron oxide particles (VSOP). Our long-term aim is to use magnetic resonance imaging (MRI) to investigate T cell dynamics in vivo during the course of neuroinflammatory disorders such as experimental autoimmune encephalomyelitis (EAE), an animal model of multiple sclerosis. Encephalitogenic T cells were co-incubated with VSOP, or with protamine-complexed VSOP (VProt), respectively, at different conditions, optimizing concentrations and incubation times. Labeling efficacy was determined by atomic absorption spectrometry as well as histologically, and evaluated on a 7 T MR system. Furthermore, we investigated possible alterations of T cell physiology caused by the labeling procedure. T cell co-incubation with VSOP resulted in an efficient cellular iron uptake. T2 times of labeled cells dropped significantly, resulting in prominent hypointensity on T2*-weighted scans. Optimal labeling efficacy was achieved by VProt (1 mM Fe/ml, 8 h incubation; T2 time shortening of ∼80% compared to untreated cells). Although VSOP promoted T cell proliferation and altered the ratio of T cell subpopulations toward a CD4(+) phenotype, no effects on CD4 T cell proliferation or phenotypic stability were observed by labeling in vitro differentiated Th17 cells with VProt. Yet, high concentrations of intracellular iron oxide might induce alterations in T cell function, which should be considered in cell tagging studies. Moreover, we demonstrated that labeling of encephalitogenic T cells did not affect pathogenicity; labeled T cells were still capable of inducing EAE in susceptible recipient mice.
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spelling pubmed-32408932011-12-27 Electrostatically Stabilized Magnetic Nanoparticles – An Optimized Protocol to Label Murine T Cells for in vivo MRI Wuerfel, Eva Smyth, Maureen Millward, Jason M. Schellenberger, Eyk Glumm, Jana Prozorovski, Timour Aktas, Orhan Schulze-Topphoff, Ulf Schnorr, Jörg Wagner, Susanne Taupitz, Matthias Infante-Duarte, Carmen Wuerfel, Jens Front Neurol Neurology We present a novel highly efficient protocol to magnetically label T cells applying electrostatically stabilized very small superparamagnetic iron oxide particles (VSOP). Our long-term aim is to use magnetic resonance imaging (MRI) to investigate T cell dynamics in vivo during the course of neuroinflammatory disorders such as experimental autoimmune encephalomyelitis (EAE), an animal model of multiple sclerosis. Encephalitogenic T cells were co-incubated with VSOP, or with protamine-complexed VSOP (VProt), respectively, at different conditions, optimizing concentrations and incubation times. Labeling efficacy was determined by atomic absorption spectrometry as well as histologically, and evaluated on a 7 T MR system. Furthermore, we investigated possible alterations of T cell physiology caused by the labeling procedure. T cell co-incubation with VSOP resulted in an efficient cellular iron uptake. T2 times of labeled cells dropped significantly, resulting in prominent hypointensity on T2*-weighted scans. Optimal labeling efficacy was achieved by VProt (1 mM Fe/ml, 8 h incubation; T2 time shortening of ∼80% compared to untreated cells). Although VSOP promoted T cell proliferation and altered the ratio of T cell subpopulations toward a CD4(+) phenotype, no effects on CD4 T cell proliferation or phenotypic stability were observed by labeling in vitro differentiated Th17 cells with VProt. Yet, high concentrations of intracellular iron oxide might induce alterations in T cell function, which should be considered in cell tagging studies. Moreover, we demonstrated that labeling of encephalitogenic T cells did not affect pathogenicity; labeled T cells were still capable of inducing EAE in susceptible recipient mice. Frontiers Research Foundation 2011-12-16 /pmc/articles/PMC3240893/ /pubmed/22203815 http://dx.doi.org/10.3389/fneur.2011.00072 Text en Copyright © 2011 Wuerfel, Smyth, Millward, Schellenberger, Glumm, Prozorovski, Aktas, Schulze-Topphoff, Schnorr, Wagner, Taupitz, Infante-Duarte and Wuerfel. http://www.frontiersin.org/licenseagreement This is an open-access article subject to a non-exclusive license between the authors and Frontiers Media SA, which permits use, distribution and reproduction in other forums, provided the original authors and source are credited and other Frontiers conditions are complied with.
spellingShingle Neurology
Wuerfel, Eva
Smyth, Maureen
Millward, Jason M.
Schellenberger, Eyk
Glumm, Jana
Prozorovski, Timour
Aktas, Orhan
Schulze-Topphoff, Ulf
Schnorr, Jörg
Wagner, Susanne
Taupitz, Matthias
Infante-Duarte, Carmen
Wuerfel, Jens
Electrostatically Stabilized Magnetic Nanoparticles – An Optimized Protocol to Label Murine T Cells for in vivo MRI
title Electrostatically Stabilized Magnetic Nanoparticles – An Optimized Protocol to Label Murine T Cells for in vivo MRI
title_full Electrostatically Stabilized Magnetic Nanoparticles – An Optimized Protocol to Label Murine T Cells for in vivo MRI
title_fullStr Electrostatically Stabilized Magnetic Nanoparticles – An Optimized Protocol to Label Murine T Cells for in vivo MRI
title_full_unstemmed Electrostatically Stabilized Magnetic Nanoparticles – An Optimized Protocol to Label Murine T Cells for in vivo MRI
title_short Electrostatically Stabilized Magnetic Nanoparticles – An Optimized Protocol to Label Murine T Cells for in vivo MRI
title_sort electrostatically stabilized magnetic nanoparticles – an optimized protocol to label murine t cells for in vivo mri
topic Neurology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3240893/
https://www.ncbi.nlm.nih.gov/pubmed/22203815
http://dx.doi.org/10.3389/fneur.2011.00072
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