Cargando…

Directional control of neurite outgrowth: emerging technologies for Parkinson's disease using magnetic nanoparticles and magnetic field gradients

A challenge in current stem cell therapies for Parkinson's disease (PD) is controlling neuronal outgrowth from the substantia nigra towards the targeted area where connectivity is required in the striatum. Here we present progress towards controlling directional neurite extensions through the a...

Descripción completa

Detalles Bibliográficos
Autores principales: Dhillon, K., Aizel, K., Broomhall, T. J., Secret, E., Goodman, T., Rotherham, M., Telling, N., Siaugue, J. M., Ménager, C., Fresnais, J., Coppey, M., El Haj, A. J., Gates, M. A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9653228/
https://www.ncbi.nlm.nih.gov/pubmed/36349444
http://dx.doi.org/10.1098/rsif.2022.0576
_version_ 1784828640144392192
author Dhillon, K.
Aizel, K.
Broomhall, T. J.
Secret, E.
Goodman, T.
Rotherham, M.
Telling, N.
Siaugue, J. M.
Ménager, C.
Fresnais, J.
Coppey, M.
El Haj, A. J.
Gates, M. A.
author_facet Dhillon, K.
Aizel, K.
Broomhall, T. J.
Secret, E.
Goodman, T.
Rotherham, M.
Telling, N.
Siaugue, J. M.
Ménager, C.
Fresnais, J.
Coppey, M.
El Haj, A. J.
Gates, M. A.
author_sort Dhillon, K.
collection PubMed
description A challenge in current stem cell therapies for Parkinson's disease (PD) is controlling neuronal outgrowth from the substantia nigra towards the targeted area where connectivity is required in the striatum. Here we present progress towards controlling directional neurite extensions through the application of iron-oxide magnetic nanoparticles (MNPs) labelled neuronal cells combined with a magnetic array generating large spatially variant field gradients (greater than 20 T m(−1)). We investigated the viability of this approach in both two-dimensional and organotypic brain slice models and validated the observed changes in neurite directionality using mathematical models. Results showed that MNP-labelled cells exhibited a shift in directional neurite outgrowth when cultured in a magnetic field gradient, which broadly agreed with mathematical modelling of the magnetic force gradients and predicted MNP force direction. We translated our approach to an ex vivo rat brain slice where we observed directional neurite outgrowth of transplanted MNP-labelled cells from the substantia nigra towards the striatum. The improved directionality highlights the viability of this approach as a remote-control methodology for the control and manipulation of cellular growth for regenerative medicine applications. This study presents a new tool to overcome challenges faced in the development of new therapies for PD.
format Online
Article
Text
id pubmed-9653228
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher The Royal Society
record_format MEDLINE/PubMed
spelling pubmed-96532282022-11-22 Directional control of neurite outgrowth: emerging technologies for Parkinson's disease using magnetic nanoparticles and magnetic field gradients Dhillon, K. Aizel, K. Broomhall, T. J. Secret, E. Goodman, T. Rotherham, M. Telling, N. Siaugue, J. M. Ménager, C. Fresnais, J. Coppey, M. El Haj, A. J. Gates, M. A. J R Soc Interface Life Sciences–Engineering interface A challenge in current stem cell therapies for Parkinson's disease (PD) is controlling neuronal outgrowth from the substantia nigra towards the targeted area where connectivity is required in the striatum. Here we present progress towards controlling directional neurite extensions through the application of iron-oxide magnetic nanoparticles (MNPs) labelled neuronal cells combined with a magnetic array generating large spatially variant field gradients (greater than 20 T m(−1)). We investigated the viability of this approach in both two-dimensional and organotypic brain slice models and validated the observed changes in neurite directionality using mathematical models. Results showed that MNP-labelled cells exhibited a shift in directional neurite outgrowth when cultured in a magnetic field gradient, which broadly agreed with mathematical modelling of the magnetic force gradients and predicted MNP force direction. We translated our approach to an ex vivo rat brain slice where we observed directional neurite outgrowth of transplanted MNP-labelled cells from the substantia nigra towards the striatum. The improved directionality highlights the viability of this approach as a remote-control methodology for the control and manipulation of cellular growth for regenerative medicine applications. This study presents a new tool to overcome challenges faced in the development of new therapies for PD. The Royal Society 2022-11-09 /pmc/articles/PMC9653228/ /pubmed/36349444 http://dx.doi.org/10.1098/rsif.2022.0576 Text en © 2022 The Authors. https://creativecommons.org/licenses/by/4.0/Published by the Royal Society under the terms of the Creative Commons Attribution License http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, provided the original author and source are credited.
spellingShingle Life Sciences–Engineering interface
Dhillon, K.
Aizel, K.
Broomhall, T. J.
Secret, E.
Goodman, T.
Rotherham, M.
Telling, N.
Siaugue, J. M.
Ménager, C.
Fresnais, J.
Coppey, M.
El Haj, A. J.
Gates, M. A.
Directional control of neurite outgrowth: emerging technologies for Parkinson's disease using magnetic nanoparticles and magnetic field gradients
title Directional control of neurite outgrowth: emerging technologies for Parkinson's disease using magnetic nanoparticles and magnetic field gradients
title_full Directional control of neurite outgrowth: emerging technologies for Parkinson's disease using magnetic nanoparticles and magnetic field gradients
title_fullStr Directional control of neurite outgrowth: emerging technologies for Parkinson's disease using magnetic nanoparticles and magnetic field gradients
title_full_unstemmed Directional control of neurite outgrowth: emerging technologies for Parkinson's disease using magnetic nanoparticles and magnetic field gradients
title_short Directional control of neurite outgrowth: emerging technologies for Parkinson's disease using magnetic nanoparticles and magnetic field gradients
title_sort directional control of neurite outgrowth: emerging technologies for parkinson's disease using magnetic nanoparticles and magnetic field gradients
topic Life Sciences–Engineering interface
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9653228/
https://www.ncbi.nlm.nih.gov/pubmed/36349444
http://dx.doi.org/10.1098/rsif.2022.0576
work_keys_str_mv AT dhillonk directionalcontrolofneuriteoutgrowthemergingtechnologiesforparkinsonsdiseaseusingmagneticnanoparticlesandmagneticfieldgradients
AT aizelk directionalcontrolofneuriteoutgrowthemergingtechnologiesforparkinsonsdiseaseusingmagneticnanoparticlesandmagneticfieldgradients
AT broomhalltj directionalcontrolofneuriteoutgrowthemergingtechnologiesforparkinsonsdiseaseusingmagneticnanoparticlesandmagneticfieldgradients
AT secrete directionalcontrolofneuriteoutgrowthemergingtechnologiesforparkinsonsdiseaseusingmagneticnanoparticlesandmagneticfieldgradients
AT goodmant directionalcontrolofneuriteoutgrowthemergingtechnologiesforparkinsonsdiseaseusingmagneticnanoparticlesandmagneticfieldgradients
AT rotherhamm directionalcontrolofneuriteoutgrowthemergingtechnologiesforparkinsonsdiseaseusingmagneticnanoparticlesandmagneticfieldgradients
AT tellingn directionalcontrolofneuriteoutgrowthemergingtechnologiesforparkinsonsdiseaseusingmagneticnanoparticlesandmagneticfieldgradients
AT siauguejm directionalcontrolofneuriteoutgrowthemergingtechnologiesforparkinsonsdiseaseusingmagneticnanoparticlesandmagneticfieldgradients
AT menagerc directionalcontrolofneuriteoutgrowthemergingtechnologiesforparkinsonsdiseaseusingmagneticnanoparticlesandmagneticfieldgradients
AT fresnaisj directionalcontrolofneuriteoutgrowthemergingtechnologiesforparkinsonsdiseaseusingmagneticnanoparticlesandmagneticfieldgradients
AT coppeym directionalcontrolofneuriteoutgrowthemergingtechnologiesforparkinsonsdiseaseusingmagneticnanoparticlesandmagneticfieldgradients
AT elhajaj directionalcontrolofneuriteoutgrowthemergingtechnologiesforparkinsonsdiseaseusingmagneticnanoparticlesandmagneticfieldgradients
AT gatesma directionalcontrolofneuriteoutgrowthemergingtechnologiesforparkinsonsdiseaseusingmagneticnanoparticlesandmagneticfieldgradients