DEVELOPING NEW METHODS OF SPINAL CORD INJURY TREATMENT USING MAGNETIC NANOPARTICLES IN COMBINATION WITH ELECTROMAGNETIC FIELD

ABSTRACT Objective: To determine the amount of loss of function after spinal cord transection of varying extents, and whether magnetic iron oxide nanoparticles, in combination with an external magnetic field, improve the rate of subsequent functional recovery in rats. Methods: The animals were div...

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Main Authors: Sergey Kolesov, Andrey Panteleyev, Maxim Sazhnev, Arkadiy Kazmin
Format: Article
Language:English
Published: Sociedade Brasileira de Coluna (SBC)
Series:Coluna/Columna
Subjects:
Online Access:http://www.scielo.br/scielo.php?script=sci_arttext&pid=S1808-18512017000200145&lng=en&tlng=en
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spelling doaj-f858ffa476754aabb15475d14673f6972020-11-24T23:43:39ZengSociedade Brasileira de Coluna (SBC)Coluna/Columna 2177-014X16214514810.1590/s1808-185120171602172206S1808-18512017000200145DEVELOPING NEW METHODS OF SPINAL CORD INJURY TREATMENT USING MAGNETIC NANOPARTICLES IN COMBINATION WITH ELECTROMAGNETIC FIELDSergey KolesovAndrey PanteleyevMaxim SazhnevArkadiy KazminABSTRACT Objective: To determine the amount of loss of function after spinal cord transection of varying extents, and whether magnetic iron oxide nanoparticles, in combination with an external magnetic field, improve the rate of subsequent functional recovery in rats. Methods: The animals were divided into groups with 50%, 80% and complete spinal cord transection. The animals of all three study groups were administered magnetic iron oxide nanoparticle suspension to the area of injury. The three control groups were not administered magnetic nanoparticles, but had corresponding transection levels. All animals were exposed to a magnetic field for 4 weeks. Loss of postoperative function and subsequent recovery were assessed using the BBB motor function scale and somatosensory evoked potential monitoring on the first day after surgery, and then weekly. Terminal histological analysis was also conducted in all the groups. Results: The animals in the control or complete transection groups did not demonstrate statistically significant improvement in either the BBB scores or evoked potential amplitude over the four-week period. In the group with 50% transection, however, a statistically significant increase in evoked potential amplitude and BBB scores was observed four weeks after surgery, with the highest increase during the second week of the study. In the group with 80% transection, only improvement in evoked potential amplitude was statistically significant, although less pronounced than in the 50% transection group. Conclusion: The use of magnetic iron oxide nanoparticles in combination with a magnetic field leads to higher rates of functional recovery after spinal cord injury in laboratory animals. The mechanism of this functional improvement needs further investigation.http://www.scielo.br/scielo.php?script=sci_arttext&pid=S1808-18512017000200145&lng=en&tlng=enTraumatismos da medula espinalNanopartículas de magnetitaTerapia de campo magnéticoRatos Wistar.
collection DOAJ
language English
format Article
sources DOAJ
author Sergey Kolesov
Andrey Panteleyev
Maxim Sazhnev
Arkadiy Kazmin
spellingShingle Sergey Kolesov
Andrey Panteleyev
Maxim Sazhnev
Arkadiy Kazmin
DEVELOPING NEW METHODS OF SPINAL CORD INJURY TREATMENT USING MAGNETIC NANOPARTICLES IN COMBINATION WITH ELECTROMAGNETIC FIELD
Coluna/Columna
Traumatismos da medula espinal
Nanopartículas de magnetita
Terapia de campo magnético
Ratos Wistar.
author_facet Sergey Kolesov
Andrey Panteleyev
Maxim Sazhnev
Arkadiy Kazmin
author_sort Sergey Kolesov
title DEVELOPING NEW METHODS OF SPINAL CORD INJURY TREATMENT USING MAGNETIC NANOPARTICLES IN COMBINATION WITH ELECTROMAGNETIC FIELD
title_short DEVELOPING NEW METHODS OF SPINAL CORD INJURY TREATMENT USING MAGNETIC NANOPARTICLES IN COMBINATION WITH ELECTROMAGNETIC FIELD
title_full DEVELOPING NEW METHODS OF SPINAL CORD INJURY TREATMENT USING MAGNETIC NANOPARTICLES IN COMBINATION WITH ELECTROMAGNETIC FIELD
title_fullStr DEVELOPING NEW METHODS OF SPINAL CORD INJURY TREATMENT USING MAGNETIC NANOPARTICLES IN COMBINATION WITH ELECTROMAGNETIC FIELD
title_full_unstemmed DEVELOPING NEW METHODS OF SPINAL CORD INJURY TREATMENT USING MAGNETIC NANOPARTICLES IN COMBINATION WITH ELECTROMAGNETIC FIELD
title_sort developing new methods of spinal cord injury treatment using magnetic nanoparticles in combination with electromagnetic field
publisher Sociedade Brasileira de Coluna (SBC)
series Coluna/Columna
issn 2177-014X
description ABSTRACT Objective: To determine the amount of loss of function after spinal cord transection of varying extents, and whether magnetic iron oxide nanoparticles, in combination with an external magnetic field, improve the rate of subsequent functional recovery in rats. Methods: The animals were divided into groups with 50%, 80% and complete spinal cord transection. The animals of all three study groups were administered magnetic iron oxide nanoparticle suspension to the area of injury. The three control groups were not administered magnetic nanoparticles, but had corresponding transection levels. All animals were exposed to a magnetic field for 4 weeks. Loss of postoperative function and subsequent recovery were assessed using the BBB motor function scale and somatosensory evoked potential monitoring on the first day after surgery, and then weekly. Terminal histological analysis was also conducted in all the groups. Results: The animals in the control or complete transection groups did not demonstrate statistically significant improvement in either the BBB scores or evoked potential amplitude over the four-week period. In the group with 50% transection, however, a statistically significant increase in evoked potential amplitude and BBB scores was observed four weeks after surgery, with the highest increase during the second week of the study. In the group with 80% transection, only improvement in evoked potential amplitude was statistically significant, although less pronounced than in the 50% transection group. Conclusion: The use of magnetic iron oxide nanoparticles in combination with a magnetic field leads to higher rates of functional recovery after spinal cord injury in laboratory animals. The mechanism of this functional improvement needs further investigation.
topic Traumatismos da medula espinal
Nanopartículas de magnetita
Terapia de campo magnético
Ratos Wistar.
url http://www.scielo.br/scielo.php?script=sci_arttext&pid=S1808-18512017000200145&lng=en&tlng=en
work_keys_str_mv AT sergeykolesov developingnewmethodsofspinalcordinjurytreatmentusingmagneticnanoparticlesincombinationwithelectromagneticfield
AT andreypanteleyev developingnewmethodsofspinalcordinjurytreatmentusingmagneticnanoparticlesincombinationwithelectromagneticfield
AT maximsazhnev developingnewmethodsofspinalcordinjurytreatmentusingmagneticnanoparticlesincombinationwithelectromagneticfield
AT arkadiykazmin developingnewmethodsofspinalcordinjurytreatmentusingmagneticnanoparticlesincombinationwithelectromagneticfield
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