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Low-dose ionizing radiation induces mitochondrial fusion and increases expression of mitochondrial complexes I and III in hippocampal neurons

High energy ionizing radiation can cause DNA damage and cell death. During clinical radiation therapy, the radiation dose could range from 15 to 60 Gy depending on targets. While 2 Gy radiation has been shown to cause cancer cell death, studies also suggest a protective potential by low dose radiati...

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Autores principales: Chien, Ling, Chen, Wun-Ke, Liu, Szu-Ting, Chang, Chuang-Rung, Kao, Mou-Chieh, Chen, Kuan-Wei, Chiu, Shih-Che, Hsu, Ming-Ling, Hsiang, I-Chou, Chen, Yu-Jen, Chen, Linyi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Impact Journals LLC 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4741557/
https://www.ncbi.nlm.nih.gov/pubmed/26415228
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author Chien, Ling
Chen, Wun-Ke
Liu, Szu-Ting
Chang, Chuang-Rung
Kao, Mou-Chieh
Chen, Kuan-Wei
Chiu, Shih-Che
Hsu, Ming-Ling
Hsiang, I-Chou
Chen, Yu-Jen
Chen, Linyi
author_facet Chien, Ling
Chen, Wun-Ke
Liu, Szu-Ting
Chang, Chuang-Rung
Kao, Mou-Chieh
Chen, Kuan-Wei
Chiu, Shih-Che
Hsu, Ming-Ling
Hsiang, I-Chou
Chen, Yu-Jen
Chen, Linyi
author_sort Chien, Ling
collection PubMed
description High energy ionizing radiation can cause DNA damage and cell death. During clinical radiation therapy, the radiation dose could range from 15 to 60 Gy depending on targets. While 2 Gy radiation has been shown to cause cancer cell death, studies also suggest a protective potential by low dose radiation. In this study, we examined the effect of 0.2-2 Gy radiation on hippocampal neurons. Low dose 0.2 Gy radiation treatment increased the levels of MTT. Since hippocampal neurons are post-mitotic, this result reveals a possibility that 0.2 Gy irradiation may increase mitochondrial activity to cope with stimuli. Maintaining neural plasticity is an energy-demanding process that requires high efficient mitochondrial function. We thus hypothesized that low dose radiation may regulate mitochondrial dynamics and function to ensure survival of neurons. Our results showed that five days after 0.2 Gy irradiation, no obvious changes on neuronal survival, neuronal synapses, membrane potential of mitochondria, reactive oxygen species levels, and mitochondrial DNA copy numbers. Interestingly, 0.2 Gy irradiation promoted the mitochondria fusion, resulting in part from the increased level of a mitochondrial fusion protein, Mfn2, and inhibition of Drp1 fission protein trafficking to the mitochondria. Accompanying with the increased mitochondrial fusion, the expressions of complexes I and III of the electron transport chain were also increased. These findings suggest that, hippocampal neurons undergo increased mitochondrial fusion to modulate cellular activity as an adaptive mechanism in response to low dose radiation.
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spelling pubmed-47415572016-03-03 Low-dose ionizing radiation induces mitochondrial fusion and increases expression of mitochondrial complexes I and III in hippocampal neurons Chien, Ling Chen, Wun-Ke Liu, Szu-Ting Chang, Chuang-Rung Kao, Mou-Chieh Chen, Kuan-Wei Chiu, Shih-Che Hsu, Ming-Ling Hsiang, I-Chou Chen, Yu-Jen Chen, Linyi Oncotarget Research Paper: Pathology High energy ionizing radiation can cause DNA damage and cell death. During clinical radiation therapy, the radiation dose could range from 15 to 60 Gy depending on targets. While 2 Gy radiation has been shown to cause cancer cell death, studies also suggest a protective potential by low dose radiation. In this study, we examined the effect of 0.2-2 Gy radiation on hippocampal neurons. Low dose 0.2 Gy radiation treatment increased the levels of MTT. Since hippocampal neurons are post-mitotic, this result reveals a possibility that 0.2 Gy irradiation may increase mitochondrial activity to cope with stimuli. Maintaining neural plasticity is an energy-demanding process that requires high efficient mitochondrial function. We thus hypothesized that low dose radiation may regulate mitochondrial dynamics and function to ensure survival of neurons. Our results showed that five days after 0.2 Gy irradiation, no obvious changes on neuronal survival, neuronal synapses, membrane potential of mitochondria, reactive oxygen species levels, and mitochondrial DNA copy numbers. Interestingly, 0.2 Gy irradiation promoted the mitochondria fusion, resulting in part from the increased level of a mitochondrial fusion protein, Mfn2, and inhibition of Drp1 fission protein trafficking to the mitochondria. Accompanying with the increased mitochondrial fusion, the expressions of complexes I and III of the electron transport chain were also increased. These findings suggest that, hippocampal neurons undergo increased mitochondrial fusion to modulate cellular activity as an adaptive mechanism in response to low dose radiation. Impact Journals LLC 2015-09-22 /pmc/articles/PMC4741557/ /pubmed/26415228 Text en Copyright: © 2015 Chien et al. http://creativecommons.org/licenses/by/2.5/ 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 credited.
spellingShingle Research Paper: Pathology
Chien, Ling
Chen, Wun-Ke
Liu, Szu-Ting
Chang, Chuang-Rung
Kao, Mou-Chieh
Chen, Kuan-Wei
Chiu, Shih-Che
Hsu, Ming-Ling
Hsiang, I-Chou
Chen, Yu-Jen
Chen, Linyi
Low-dose ionizing radiation induces mitochondrial fusion and increases expression of mitochondrial complexes I and III in hippocampal neurons
title Low-dose ionizing radiation induces mitochondrial fusion and increases expression of mitochondrial complexes I and III in hippocampal neurons
title_full Low-dose ionizing radiation induces mitochondrial fusion and increases expression of mitochondrial complexes I and III in hippocampal neurons
title_fullStr Low-dose ionizing radiation induces mitochondrial fusion and increases expression of mitochondrial complexes I and III in hippocampal neurons
title_full_unstemmed Low-dose ionizing radiation induces mitochondrial fusion and increases expression of mitochondrial complexes I and III in hippocampal neurons
title_short Low-dose ionizing radiation induces mitochondrial fusion and increases expression of mitochondrial complexes I and III in hippocampal neurons
title_sort low-dose ionizing radiation induces mitochondrial fusion and increases expression of mitochondrial complexes i and iii in hippocampal neurons
topic Research Paper: Pathology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4741557/
https://www.ncbi.nlm.nih.gov/pubmed/26415228
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