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Silica Nanoparticles Disturb Ion Channels and Transmembrane Potentials of Cardiomyocytes and Induce Lethal Arrhythmias in Mice

BACKGROUND: The toxicity of silica nanoparticles (SiNPs) on cardiac electrophysiology has seldom been evaluated. METHODS: Patch-clamp was used to investigate the acute effects of SiNP-100 (100 nm) and SiNP-20 (20 nm) on the transmembrane potentials (TMPs) and ion channels in cultured neonatal mouse...

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Autores principales: Liu, Ya-Qin, Xue, Si-Meng, Zhang, Peng, Xu, Lin-Na, Wang, De-Ping, Li, Guang, Cao, Ji-Min
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Dove 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7547143/
https://www.ncbi.nlm.nih.gov/pubmed/33116478
http://dx.doi.org/10.2147/IJN.S261692
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author Liu, Ya-Qin
Xue, Si-Meng
Zhang, Peng
Xu, Lin-Na
Wang, De-Ping
Li, Guang
Cao, Ji-Min
author_facet Liu, Ya-Qin
Xue, Si-Meng
Zhang, Peng
Xu, Lin-Na
Wang, De-Ping
Li, Guang
Cao, Ji-Min
author_sort Liu, Ya-Qin
collection PubMed
description BACKGROUND: The toxicity of silica nanoparticles (SiNPs) on cardiac electrophysiology has seldom been evaluated. METHODS: Patch-clamp was used to investigate the acute effects of SiNP-100 (100 nm) and SiNP-20 (20 nm) on the transmembrane potentials (TMPs) and ion channels in cultured neonatal mouse ventricular myocytes. Calcium mobilization in vitro, cardiomyocyte ROS generation, and LDH leakage after exposure to SiNPs in vitro and in vivo were measured using a microplate reader. Surface electrocardiograms were recorded in adult mice to evaluate the arrhythmogenic effects of SiNPs in vivo. SiNP endocytosis was observed using transmission electron microscopy. RESULTS: Within 30 min, both SiNPs (10(−8)–10(−6) g/mL) did not affect the resting potential and I(K1) channels. SiNP-100 increased the action potential amplitude (APA) and the I(Na) current density, but SiNP-20 decreased APA and I(Na) density. SiNP-100 prolonged the action potential duration (APD) and decreased the I(to) current density, while SiNP-20 prolonged or shortened the APD, depending on exposure concentrations and increased I(to) density. Both SiNPs (10(−6) g/mL) induced calcium mobilization but did not increase ROS and LDH levels and were not endocytosed within 10 min in cardiomyocytes in vitro. In vivo, SiNP-100 (4–10 mg/kg) and SiNP-20 (4–30 mg/kg) did not elevate myocardial ROS but increased LDH levels depending on dose and exposure time. The same higher dose of SiNPs (intravenously injected) induced tachyarrhythmias and lethal bradyarrhythmias within 90 min in adult mice. CONCLUSION: SiNPs (i) exert rapid toxic effects on the TMPs of cardiomyocytes in vitro largely owing to their direct interfering effects on the I(Na) and I(to) channels and Ca(2+) homeostasis but not I(K1) channels and ROS levels, and (ii) induce tachyarrhythmias and lethal bradyarrhythmias in vivo. SiNP-100 is more toxic than SiNP-20 on cardiac electrophysiology, and the toxicity mechanism is likely more complicated in vivo.
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spelling pubmed-75471432020-10-27 Silica Nanoparticles Disturb Ion Channels and Transmembrane Potentials of Cardiomyocytes and Induce Lethal Arrhythmias in Mice Liu, Ya-Qin Xue, Si-Meng Zhang, Peng Xu, Lin-Na Wang, De-Ping Li, Guang Cao, Ji-Min Int J Nanomedicine Original Research BACKGROUND: The toxicity of silica nanoparticles (SiNPs) on cardiac electrophysiology has seldom been evaluated. METHODS: Patch-clamp was used to investigate the acute effects of SiNP-100 (100 nm) and SiNP-20 (20 nm) on the transmembrane potentials (TMPs) and ion channels in cultured neonatal mouse ventricular myocytes. Calcium mobilization in vitro, cardiomyocyte ROS generation, and LDH leakage after exposure to SiNPs in vitro and in vivo were measured using a microplate reader. Surface electrocardiograms were recorded in adult mice to evaluate the arrhythmogenic effects of SiNPs in vivo. SiNP endocytosis was observed using transmission electron microscopy. RESULTS: Within 30 min, both SiNPs (10(−8)–10(−6) g/mL) did not affect the resting potential and I(K1) channels. SiNP-100 increased the action potential amplitude (APA) and the I(Na) current density, but SiNP-20 decreased APA and I(Na) density. SiNP-100 prolonged the action potential duration (APD) and decreased the I(to) current density, while SiNP-20 prolonged or shortened the APD, depending on exposure concentrations and increased I(to) density. Both SiNPs (10(−6) g/mL) induced calcium mobilization but did not increase ROS and LDH levels and were not endocytosed within 10 min in cardiomyocytes in vitro. In vivo, SiNP-100 (4–10 mg/kg) and SiNP-20 (4–30 mg/kg) did not elevate myocardial ROS but increased LDH levels depending on dose and exposure time. The same higher dose of SiNPs (intravenously injected) induced tachyarrhythmias and lethal bradyarrhythmias within 90 min in adult mice. CONCLUSION: SiNPs (i) exert rapid toxic effects on the TMPs of cardiomyocytes in vitro largely owing to their direct interfering effects on the I(Na) and I(to) channels and Ca(2+) homeostasis but not I(K1) channels and ROS levels, and (ii) induce tachyarrhythmias and lethal bradyarrhythmias in vivo. SiNP-100 is more toxic than SiNP-20 on cardiac electrophysiology, and the toxicity mechanism is likely more complicated in vivo. Dove 2020-10-05 /pmc/articles/PMC7547143/ /pubmed/33116478 http://dx.doi.org/10.2147/IJN.S261692 Text en © 2020 Liu et al. http://creativecommons.org/licenses/by-nc/3.0/ This work is published and licensed by Dove Medical Press Limited. The full terms of this license are available at https://www.dovepress.com/terms.php and incorporate the Creative Commons Attribution – Non Commercial (unported, v3.0) License (http://creativecommons.org/licenses/by-nc/3.0/). By accessing the work you hereby accept the Terms. Non-commercial uses of the work are permitted without any further permission from Dove Medical Press Limited, provided the work is properly attributed. For permission for commercial use of this work, please see paragraphs 4.2 and 5 of our Terms (https://www.dovepress.com/terms.php).
spellingShingle Original Research
Liu, Ya-Qin
Xue, Si-Meng
Zhang, Peng
Xu, Lin-Na
Wang, De-Ping
Li, Guang
Cao, Ji-Min
Silica Nanoparticles Disturb Ion Channels and Transmembrane Potentials of Cardiomyocytes and Induce Lethal Arrhythmias in Mice
title Silica Nanoparticles Disturb Ion Channels and Transmembrane Potentials of Cardiomyocytes and Induce Lethal Arrhythmias in Mice
title_full Silica Nanoparticles Disturb Ion Channels and Transmembrane Potentials of Cardiomyocytes and Induce Lethal Arrhythmias in Mice
title_fullStr Silica Nanoparticles Disturb Ion Channels and Transmembrane Potentials of Cardiomyocytes and Induce Lethal Arrhythmias in Mice
title_full_unstemmed Silica Nanoparticles Disturb Ion Channels and Transmembrane Potentials of Cardiomyocytes and Induce Lethal Arrhythmias in Mice
title_short Silica Nanoparticles Disturb Ion Channels and Transmembrane Potentials of Cardiomyocytes and Induce Lethal Arrhythmias in Mice
title_sort silica nanoparticles disturb ion channels and transmembrane potentials of cardiomyocytes and induce lethal arrhythmias in mice
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7547143/
https://www.ncbi.nlm.nih.gov/pubmed/33116478
http://dx.doi.org/10.2147/IJN.S261692
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