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Consequences of Low Dose Ionizing Radiation Exposure on the Hippocampal Microenvironment

The response of the brain to irradiation is complex, involving a multitude of stress inducible pathways that regulate neurotransmission within a dynamic microenvironment. While significant past work has detailed the consequences of CNS radiotherapy following relatively high doses (≥ 45 Gy), few stud...

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Autores principales: Acharya, Munjal M., Patel, Neal H., Craver, Brianna M., Tran, Katherine K., Giedzinski, Erich, Tseng, Bertrand P., Parihar, Vipan K., Limoli, Charles L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4456101/
https://www.ncbi.nlm.nih.gov/pubmed/26042591
http://dx.doi.org/10.1371/journal.pone.0128316
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author Acharya, Munjal M.
Patel, Neal H.
Craver, Brianna M.
Tran, Katherine K.
Giedzinski, Erich
Tseng, Bertrand P.
Parihar, Vipan K.
Limoli, Charles L.
author_facet Acharya, Munjal M.
Patel, Neal H.
Craver, Brianna M.
Tran, Katherine K.
Giedzinski, Erich
Tseng, Bertrand P.
Parihar, Vipan K.
Limoli, Charles L.
author_sort Acharya, Munjal M.
collection PubMed
description The response of the brain to irradiation is complex, involving a multitude of stress inducible pathways that regulate neurotransmission within a dynamic microenvironment. While significant past work has detailed the consequences of CNS radiotherapy following relatively high doses (≥ 45 Gy), few studies have been conducted at much lower doses (≤ 2 Gy), where the response of the CNS (like many other tissues) may differ substantially from that expected from linear extrapolations of high dose data. Low dose exposure could elicit radioadaptive modulation of critical CNS processes such as neurogenesis, that provide cellular input into hippocampal circuits known to impact learning and memory. Here we show that mice deficient for chemokine signaling through genetic disruption of the CCR2 receptor exhibit a neuroprotective phenotype. Compared to wild type (WT) animals, CCR2 deficiency spared reductions in hippocampal neural progenitor cell survival and stabilized neurogenesis following exposure to low dose irradiation. While radiation-induced changes in microglia levels were not found in WT or CCR2 deficient animals, the number of Iba1+ cells did differ between each genotype at the higher dosing paradigms, suggesting that blockade of this signaling axis could moderate the neuroinflammatory response. Interestingly, changes in proinflammatory gene expression were limited in WT animals, while irradiation caused significant elevations in these markers that were attenuated significantly after radioadaptive dosing paradigms in CCR2 deficient mice. These data point to the importance of chemokine signaling under low dose paradigms, findings of potential significance to those exposed to ionizing radiation under a variety of occupational and/or medical scenarios.
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spelling pubmed-44561012015-06-09 Consequences of Low Dose Ionizing Radiation Exposure on the Hippocampal Microenvironment Acharya, Munjal M. Patel, Neal H. Craver, Brianna M. Tran, Katherine K. Giedzinski, Erich Tseng, Bertrand P. Parihar, Vipan K. Limoli, Charles L. PLoS One Research Article The response of the brain to irradiation is complex, involving a multitude of stress inducible pathways that regulate neurotransmission within a dynamic microenvironment. While significant past work has detailed the consequences of CNS radiotherapy following relatively high doses (≥ 45 Gy), few studies have been conducted at much lower doses (≤ 2 Gy), where the response of the CNS (like many other tissues) may differ substantially from that expected from linear extrapolations of high dose data. Low dose exposure could elicit radioadaptive modulation of critical CNS processes such as neurogenesis, that provide cellular input into hippocampal circuits known to impact learning and memory. Here we show that mice deficient for chemokine signaling through genetic disruption of the CCR2 receptor exhibit a neuroprotective phenotype. Compared to wild type (WT) animals, CCR2 deficiency spared reductions in hippocampal neural progenitor cell survival and stabilized neurogenesis following exposure to low dose irradiation. While radiation-induced changes in microglia levels were not found in WT or CCR2 deficient animals, the number of Iba1+ cells did differ between each genotype at the higher dosing paradigms, suggesting that blockade of this signaling axis could moderate the neuroinflammatory response. Interestingly, changes in proinflammatory gene expression were limited in WT animals, while irradiation caused significant elevations in these markers that were attenuated significantly after radioadaptive dosing paradigms in CCR2 deficient mice. These data point to the importance of chemokine signaling under low dose paradigms, findings of potential significance to those exposed to ionizing radiation under a variety of occupational and/or medical scenarios. Public Library of Science 2015-06-04 /pmc/articles/PMC4456101/ /pubmed/26042591 http://dx.doi.org/10.1371/journal.pone.0128316 Text en © 2015 Acharya 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
Acharya, Munjal M.
Patel, Neal H.
Craver, Brianna M.
Tran, Katherine K.
Giedzinski, Erich
Tseng, Bertrand P.
Parihar, Vipan K.
Limoli, Charles L.
Consequences of Low Dose Ionizing Radiation Exposure on the Hippocampal Microenvironment
title Consequences of Low Dose Ionizing Radiation Exposure on the Hippocampal Microenvironment
title_full Consequences of Low Dose Ionizing Radiation Exposure on the Hippocampal Microenvironment
title_fullStr Consequences of Low Dose Ionizing Radiation Exposure on the Hippocampal Microenvironment
title_full_unstemmed Consequences of Low Dose Ionizing Radiation Exposure on the Hippocampal Microenvironment
title_short Consequences of Low Dose Ionizing Radiation Exposure on the Hippocampal Microenvironment
title_sort consequences of low dose ionizing radiation exposure on the hippocampal microenvironment
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4456101/
https://www.ncbi.nlm.nih.gov/pubmed/26042591
http://dx.doi.org/10.1371/journal.pone.0128316
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