Engineered core-shell magnetic nanoparticle for MR dual-modal tracking and safe magnetic manipulation of ependymal cells in live rodents.

Tagging recognition group(s) on superparamagnetic iron oxide is known to aid localization (imaging), stimulation and separation of biological entities using magnetic resonance imaging (MRI) and magnetic agitation/separation (MAS) techniques. Despite the wide applicability of iron oxide nanoparticles...

Description complète

Détails bibliographiques
Auteurs principaux: Peng, Y, Lui, C, Chen, Y, Chou, S, Chou, P, Yung, K, Tsang, S
Format: Journal article
Langue:English
Publié: Institute of Physics 2017
_version_ 1826293842687557632
author Peng, Y
Lui, C
Chen, Y
Chou, S
Chou, P
Yung, K
Tsang, S
author_facet Peng, Y
Lui, C
Chen, Y
Chou, S
Chou, P
Yung, K
Tsang, S
author_sort Peng, Y
collection OXFORD
description Tagging recognition group(s) on superparamagnetic iron oxide is known to aid localization (imaging), stimulation and separation of biological entities using magnetic resonance imaging (MRI) and magnetic agitation/separation (MAS) techniques. Despite the wide applicability of iron oxide nanoparticles in T2-weighted MRI and MAS, the quality of the images and safe manipulation of the exceptionally delicate neural cells in a live brain are currently the key challenges. Here, we demonstrate the engineered manganese oxide clusters-iron oxide core-shell nanoparticle as an MR dual-modal contrast agent (DMCA) for neural stem cells imaging and magnetic manipulation in live rodents. As a result, using this engineered nanoparticle and associated technologies, identification, stimulation and transportation of labelled potentially multipotent neural stem cells from a specific location of a live brain to another by magnetic means for self-healing therapy can therefore be made possible.
first_indexed 2024-03-07T03:36:24Z
format Journal article
id oxford-uuid:bc6fffe4-2f2d-4d96-99cb-4d4a8decf42f
institution University of Oxford
language English
last_indexed 2024-03-07T03:36:24Z
publishDate 2017
publisher Institute of Physics
record_format dspace
spelling oxford-uuid:bc6fffe4-2f2d-4d96-99cb-4d4a8decf42f2022-03-27T05:24:22ZEngineered core-shell magnetic nanoparticle for MR dual-modal tracking and safe magnetic manipulation of ependymal cells in live rodents.Journal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:bc6fffe4-2f2d-4d96-99cb-4d4a8decf42fEnglishSymplectic Elements at OxfordInstitute of Physics2017Peng, YLui, CChen, YChou, SChou, PYung, KTsang, STagging recognition group(s) on superparamagnetic iron oxide is known to aid localization (imaging), stimulation and separation of biological entities using magnetic resonance imaging (MRI) and magnetic agitation/separation (MAS) techniques. Despite the wide applicability of iron oxide nanoparticles in T2-weighted MRI and MAS, the quality of the images and safe manipulation of the exceptionally delicate neural cells in a live brain are currently the key challenges. Here, we demonstrate the engineered manganese oxide clusters-iron oxide core-shell nanoparticle as an MR dual-modal contrast agent (DMCA) for neural stem cells imaging and magnetic manipulation in live rodents. As a result, using this engineered nanoparticle and associated technologies, identification, stimulation and transportation of labelled potentially multipotent neural stem cells from a specific location of a live brain to another by magnetic means for self-healing therapy can therefore be made possible.
spellingShingle Peng, Y
Lui, C
Chen, Y
Chou, S
Chou, P
Yung, K
Tsang, S
Engineered core-shell magnetic nanoparticle for MR dual-modal tracking and safe magnetic manipulation of ependymal cells in live rodents.
title Engineered core-shell magnetic nanoparticle for MR dual-modal tracking and safe magnetic manipulation of ependymal cells in live rodents.
title_full Engineered core-shell magnetic nanoparticle for MR dual-modal tracking and safe magnetic manipulation of ependymal cells in live rodents.
title_fullStr Engineered core-shell magnetic nanoparticle for MR dual-modal tracking and safe magnetic manipulation of ependymal cells in live rodents.
title_full_unstemmed Engineered core-shell magnetic nanoparticle for MR dual-modal tracking and safe magnetic manipulation of ependymal cells in live rodents.
title_short Engineered core-shell magnetic nanoparticle for MR dual-modal tracking and safe magnetic manipulation of ependymal cells in live rodents.
title_sort engineered core shell magnetic nanoparticle for mr dual modal tracking and safe magnetic manipulation of ependymal cells in live rodents
work_keys_str_mv AT pengy engineeredcoreshellmagneticnanoparticleformrdualmodaltrackingandsafemagneticmanipulationofependymalcellsinliverodents
AT luic engineeredcoreshellmagneticnanoparticleformrdualmodaltrackingandsafemagneticmanipulationofependymalcellsinliverodents
AT cheny engineeredcoreshellmagneticnanoparticleformrdualmodaltrackingandsafemagneticmanipulationofependymalcellsinliverodents
AT chous engineeredcoreshellmagneticnanoparticleformrdualmodaltrackingandsafemagneticmanipulationofependymalcellsinliverodents
AT choup engineeredcoreshellmagneticnanoparticleformrdualmodaltrackingandsafemagneticmanipulationofependymalcellsinliverodents
AT yungk engineeredcoreshellmagneticnanoparticleformrdualmodaltrackingandsafemagneticmanipulationofependymalcellsinliverodents
AT tsangs engineeredcoreshellmagneticnanoparticleformrdualmodaltrackingandsafemagneticmanipulationofependymalcellsinliverodents