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Unmodified CdSe Quantum Dots Induce Elevation of Cytoplasmic Calcium Levels and Impairment of Functional Properties of Sodium Channels in Rat Primary Cultured Hippocampal Neurons

BACKGROUND: The growing applications of nanotechnologic products, such as quantum dots (QDs), increase the likelihood of exposure. Furthermore, their accumulation in the bioenvironment and retention in cells and tissues are arousing increasing worries about the potentially harmful side effects of th...

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Autores principales: Tang, Mingliang, Xing, Tairan, Zeng, Jie, Wang, Huili, Li, Chenchen, Yin, Shuting, Yan, Dan, Deng, Hongmin, Liu, Jin, Wang, Ming, Chen, Jutao, Ruan, Di-Yun
Formato: Texto
Lenguaje:English
Publicado: National Institute of Environmental Health Sciences 2008
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2453160/
https://www.ncbi.nlm.nih.gov/pubmed/18629314
http://dx.doi.org/10.1289/ehp.11225
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author Tang, Mingliang
Xing, Tairan
Zeng, Jie
Wang, Huili
Li, Chenchen
Yin, Shuting
Yan, Dan
Deng, Hongmin
Liu, Jin
Wang, Ming
Chen, Jutao
Ruan, Di-Yun
author_facet Tang, Mingliang
Xing, Tairan
Zeng, Jie
Wang, Huili
Li, Chenchen
Yin, Shuting
Yan, Dan
Deng, Hongmin
Liu, Jin
Wang, Ming
Chen, Jutao
Ruan, Di-Yun
author_sort Tang, Mingliang
collection PubMed
description BACKGROUND: The growing applications of nanotechnologic products, such as quantum dots (QDs), increase the likelihood of exposure. Furthermore, their accumulation in the bioenvironment and retention in cells and tissues are arousing increasing worries about the potentially harmful side effects of these nanotechnologic products. Previous studies concerning QD cytotoxicity focused on the reactive oxygen species produced by QDs. Cellular calcium homeostasis dysregulation caused by QDs may be also responsible for QD cytotoxicity. Meanwhile the interference of QDs with voltage-gated sodium channel (VGSC) current (I(Na)) may lead to changes in electrical activity and worsen neurotoxicologic damage. OBJECTIVE: We aimed to investigate the potential for neurotoxicity of cadmium selenium QDs in a hippocampal neuronal culture model, focusing on cytoplasmic calcium levels and VGSCs function. METHODS: We used confocal laser scanning and standard whole-cell patch clamp techniques. RESULTS: We found that a) QDs induced neuron death dose dependently; b) cytoplasmic calcium levels were elevated for an extended period by QD treatment, which was due to both extracellular calcium influx and internal calcium release from endoplasmic reticulum; and c) QD treatment enhanced activation and inactivation of I(Na), prolonged the time course of activation, slowed I(Na) recovery, and reduced the fraction of available VGSCs. CONCLUSION: Results in this study provide new insights into QD toxicology and reveal potential risks of their future applications in biology and medicine.
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spelling pubmed-24531602008-07-14 Unmodified CdSe Quantum Dots Induce Elevation of Cytoplasmic Calcium Levels and Impairment of Functional Properties of Sodium Channels in Rat Primary Cultured Hippocampal Neurons Tang, Mingliang Xing, Tairan Zeng, Jie Wang, Huili Li, Chenchen Yin, Shuting Yan, Dan Deng, Hongmin Liu, Jin Wang, Ming Chen, Jutao Ruan, Di-Yun Environ Health Perspect Research BACKGROUND: The growing applications of nanotechnologic products, such as quantum dots (QDs), increase the likelihood of exposure. Furthermore, their accumulation in the bioenvironment and retention in cells and tissues are arousing increasing worries about the potentially harmful side effects of these nanotechnologic products. Previous studies concerning QD cytotoxicity focused on the reactive oxygen species produced by QDs. Cellular calcium homeostasis dysregulation caused by QDs may be also responsible for QD cytotoxicity. Meanwhile the interference of QDs with voltage-gated sodium channel (VGSC) current (I(Na)) may lead to changes in electrical activity and worsen neurotoxicologic damage. OBJECTIVE: We aimed to investigate the potential for neurotoxicity of cadmium selenium QDs in a hippocampal neuronal culture model, focusing on cytoplasmic calcium levels and VGSCs function. METHODS: We used confocal laser scanning and standard whole-cell patch clamp techniques. RESULTS: We found that a) QDs induced neuron death dose dependently; b) cytoplasmic calcium levels were elevated for an extended period by QD treatment, which was due to both extracellular calcium influx and internal calcium release from endoplasmic reticulum; and c) QD treatment enhanced activation and inactivation of I(Na), prolonged the time course of activation, slowed I(Na) recovery, and reduced the fraction of available VGSCs. CONCLUSION: Results in this study provide new insights into QD toxicology and reveal potential risks of their future applications in biology and medicine. National Institute of Environmental Health Sciences 2008-07 2008-03-31 /pmc/articles/PMC2453160/ /pubmed/18629314 http://dx.doi.org/10.1289/ehp.11225 Text en http://creativecommons.org/publicdomain/mark/1.0/ Publication of EHP lies in the public domain and is therefore without copyright. All text from EHP may be reprinted freely. Use of materials published in EHP should be acknowledged (for example, ?Reproduced with permission from Environmental Health Perspectives?); pertinent reference information should be provided for the article from which the material was reproduced. Articles from EHP, especially the News section, may contain photographs or illustrations copyrighted by other commercial organizations or individuals that may not be used without obtaining prior approval from the holder of the copyright.
spellingShingle Research
Tang, Mingliang
Xing, Tairan
Zeng, Jie
Wang, Huili
Li, Chenchen
Yin, Shuting
Yan, Dan
Deng, Hongmin
Liu, Jin
Wang, Ming
Chen, Jutao
Ruan, Di-Yun
Unmodified CdSe Quantum Dots Induce Elevation of Cytoplasmic Calcium Levels and Impairment of Functional Properties of Sodium Channels in Rat Primary Cultured Hippocampal Neurons
title Unmodified CdSe Quantum Dots Induce Elevation of Cytoplasmic Calcium Levels and Impairment of Functional Properties of Sodium Channels in Rat Primary Cultured Hippocampal Neurons
title_full Unmodified CdSe Quantum Dots Induce Elevation of Cytoplasmic Calcium Levels and Impairment of Functional Properties of Sodium Channels in Rat Primary Cultured Hippocampal Neurons
title_fullStr Unmodified CdSe Quantum Dots Induce Elevation of Cytoplasmic Calcium Levels and Impairment of Functional Properties of Sodium Channels in Rat Primary Cultured Hippocampal Neurons
title_full_unstemmed Unmodified CdSe Quantum Dots Induce Elevation of Cytoplasmic Calcium Levels and Impairment of Functional Properties of Sodium Channels in Rat Primary Cultured Hippocampal Neurons
title_short Unmodified CdSe Quantum Dots Induce Elevation of Cytoplasmic Calcium Levels and Impairment of Functional Properties of Sodium Channels in Rat Primary Cultured Hippocampal Neurons
title_sort unmodified cdse quantum dots induce elevation of cytoplasmic calcium levels and impairment of functional properties of sodium channels in rat primary cultured hippocampal neurons
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2453160/
https://www.ncbi.nlm.nih.gov/pubmed/18629314
http://dx.doi.org/10.1289/ehp.11225
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