Cargando…

Synchrotron-Generated Microbeam Sensorimotor Cortex Transections Induce Seizure Control without Disruption of Neurological Functions

Synchrotron-generated X-ray microplanar beams (microbeams) are characterized by the ability to deliver extremely high doses of radiation to spatially restricted volumes of tissue. Minimal dose spreading outside the beam path provides an exceptional degree of protection from radio-induced damage to t...

Descripción completa

Detalles Bibliográficos
Autores principales: Romanelli, Pantaleo, Fardone, Erminia, Battaglia, Giuseppe, Bräuer-Krisch, Elke, Prezado, Yolanda, Requardt, Herwig, Le Duc, Geraldine, Nemoz, Christian, Anschel, David J., Spiga, Jenny, Bravin, Alberto
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3544911/
https://www.ncbi.nlm.nih.gov/pubmed/23341950
http://dx.doi.org/10.1371/journal.pone.0053549
_version_ 1782255871691063296
author Romanelli, Pantaleo
Fardone, Erminia
Battaglia, Giuseppe
Bräuer-Krisch, Elke
Prezado, Yolanda
Requardt, Herwig
Le Duc, Geraldine
Nemoz, Christian
Anschel, David J.
Spiga, Jenny
Bravin, Alberto
author_facet Romanelli, Pantaleo
Fardone, Erminia
Battaglia, Giuseppe
Bräuer-Krisch, Elke
Prezado, Yolanda
Requardt, Herwig
Le Duc, Geraldine
Nemoz, Christian
Anschel, David J.
Spiga, Jenny
Bravin, Alberto
author_sort Romanelli, Pantaleo
collection PubMed
description Synchrotron-generated X-ray microplanar beams (microbeams) are characterized by the ability to deliver extremely high doses of radiation to spatially restricted volumes of tissue. Minimal dose spreading outside the beam path provides an exceptional degree of protection from radio-induced damage to the neurons and glia adjacent to the microscopic slices of tissue irradiated. The preservation of cortical architecture following high-dose microbeam irradiation and the ability to induce non-invasively the equivalent of a surgical cut over the cortex is of great interest for the development of novel experimental models in neurobiology and new treatment avenues for a variety of brain disorders. Microbeams (size 100 µm/600 µm, center-to-center distance of 400 µm/1200 µm, peak entrance doses of 360-240 Gy/150-100 Gy) delivered to the sensorimotor cortex of six 2-month-old naïve rats generated histologically evident cortical transections, without modifying motor behavior and weight gain up to 7 months. Microbeam transections of the sensorimotor cortex dramatically reduced convulsive seizure duration in a further group of 12 rats receiving local infusion of kainic acid. No subsequent neurological deficit was associated with the treatment. These data provide a novel tool to study the functions of the cortex and pave the way for the development of new therapeutic strategies for epilepsy and other neurological diseases.
format Online
Article
Text
id pubmed-3544911
institution National Center for Biotechnology Information
language English
publishDate 2013
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-35449112013-01-22 Synchrotron-Generated Microbeam Sensorimotor Cortex Transections Induce Seizure Control without Disruption of Neurological Functions Romanelli, Pantaleo Fardone, Erminia Battaglia, Giuseppe Bräuer-Krisch, Elke Prezado, Yolanda Requardt, Herwig Le Duc, Geraldine Nemoz, Christian Anschel, David J. Spiga, Jenny Bravin, Alberto PLoS One Research Article Synchrotron-generated X-ray microplanar beams (microbeams) are characterized by the ability to deliver extremely high doses of radiation to spatially restricted volumes of tissue. Minimal dose spreading outside the beam path provides an exceptional degree of protection from radio-induced damage to the neurons and glia adjacent to the microscopic slices of tissue irradiated. The preservation of cortical architecture following high-dose microbeam irradiation and the ability to induce non-invasively the equivalent of a surgical cut over the cortex is of great interest for the development of novel experimental models in neurobiology and new treatment avenues for a variety of brain disorders. Microbeams (size 100 µm/600 µm, center-to-center distance of 400 µm/1200 µm, peak entrance doses of 360-240 Gy/150-100 Gy) delivered to the sensorimotor cortex of six 2-month-old naïve rats generated histologically evident cortical transections, without modifying motor behavior and weight gain up to 7 months. Microbeam transections of the sensorimotor cortex dramatically reduced convulsive seizure duration in a further group of 12 rats receiving local infusion of kainic acid. No subsequent neurological deficit was associated with the treatment. These data provide a novel tool to study the functions of the cortex and pave the way for the development of new therapeutic strategies for epilepsy and other neurological diseases. Public Library of Science 2013-01-14 /pmc/articles/PMC3544911/ /pubmed/23341950 http://dx.doi.org/10.1371/journal.pone.0053549 Text en © 2013 Romanelli et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Romanelli, Pantaleo
Fardone, Erminia
Battaglia, Giuseppe
Bräuer-Krisch, Elke
Prezado, Yolanda
Requardt, Herwig
Le Duc, Geraldine
Nemoz, Christian
Anschel, David J.
Spiga, Jenny
Bravin, Alberto
Synchrotron-Generated Microbeam Sensorimotor Cortex Transections Induce Seizure Control without Disruption of Neurological Functions
title Synchrotron-Generated Microbeam Sensorimotor Cortex Transections Induce Seizure Control without Disruption of Neurological Functions
title_full Synchrotron-Generated Microbeam Sensorimotor Cortex Transections Induce Seizure Control without Disruption of Neurological Functions
title_fullStr Synchrotron-Generated Microbeam Sensorimotor Cortex Transections Induce Seizure Control without Disruption of Neurological Functions
title_full_unstemmed Synchrotron-Generated Microbeam Sensorimotor Cortex Transections Induce Seizure Control without Disruption of Neurological Functions
title_short Synchrotron-Generated Microbeam Sensorimotor Cortex Transections Induce Seizure Control without Disruption of Neurological Functions
title_sort synchrotron-generated microbeam sensorimotor cortex transections induce seizure control without disruption of neurological functions
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3544911/
https://www.ncbi.nlm.nih.gov/pubmed/23341950
http://dx.doi.org/10.1371/journal.pone.0053549
work_keys_str_mv AT romanellipantaleo synchrotrongeneratedmicrobeamsensorimotorcortextransectionsinduceseizurecontrolwithoutdisruptionofneurologicalfunctions
AT fardoneerminia synchrotrongeneratedmicrobeamsensorimotorcortextransectionsinduceseizurecontrolwithoutdisruptionofneurologicalfunctions
AT battagliagiuseppe synchrotrongeneratedmicrobeamsensorimotorcortextransectionsinduceseizurecontrolwithoutdisruptionofneurologicalfunctions
AT brauerkrischelke synchrotrongeneratedmicrobeamsensorimotorcortextransectionsinduceseizurecontrolwithoutdisruptionofneurologicalfunctions
AT prezadoyolanda synchrotrongeneratedmicrobeamsensorimotorcortextransectionsinduceseizurecontrolwithoutdisruptionofneurologicalfunctions
AT requardtherwig synchrotrongeneratedmicrobeamsensorimotorcortextransectionsinduceseizurecontrolwithoutdisruptionofneurologicalfunctions
AT leducgeraldine synchrotrongeneratedmicrobeamsensorimotorcortextransectionsinduceseizurecontrolwithoutdisruptionofneurologicalfunctions
AT nemozchristian synchrotrongeneratedmicrobeamsensorimotorcortextransectionsinduceseizurecontrolwithoutdisruptionofneurologicalfunctions
AT anscheldavidj synchrotrongeneratedmicrobeamsensorimotorcortextransectionsinduceseizurecontrolwithoutdisruptionofneurologicalfunctions
AT spigajenny synchrotrongeneratedmicrobeamsensorimotorcortextransectionsinduceseizurecontrolwithoutdisruptionofneurologicalfunctions
AT bravinalberto synchrotrongeneratedmicrobeamsensorimotorcortextransectionsinduceseizurecontrolwithoutdisruptionofneurologicalfunctions