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Cytotoxicity Produced by Silicate Nanoplatelets: Study of Cell Death Mechanisms

Nano-silicate platelets (NSP), an exfoliated product from natural clays, have been validated for biosafety and as an effective supplement to alleviate mycotoxicosis. Since NSP induced noticeable cell death, we therefore investigated further the mechanism of cytotoxicity caused by NSP. Exposure to NS...

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Autores principales: Huang, Jie-Ting, Chang, Ling-Chu, Cheng, Chung-Ssu, Lin, Jiang-Jen, Huang, San-Yuan, Chen, Shuen-Ei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7600961/
https://www.ncbi.nlm.nih.gov/pubmed/33003487
http://dx.doi.org/10.3390/toxins12100623
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author Huang, Jie-Ting
Chang, Ling-Chu
Cheng, Chung-Ssu
Lin, Jiang-Jen
Huang, San-Yuan
Chen, Shuen-Ei
author_facet Huang, Jie-Ting
Chang, Ling-Chu
Cheng, Chung-Ssu
Lin, Jiang-Jen
Huang, San-Yuan
Chen, Shuen-Ei
author_sort Huang, Jie-Ting
collection PubMed
description Nano-silicate platelets (NSP), an exfoliated product from natural clays, have been validated for biosafety and as an effective supplement to alleviate mycotoxicosis. Since NSP induced noticeable cell death, we therefore investigated further the mechanism of cytotoxicity caused by NSP. Exposure to NSP impaired membrane integrity and caused cell death in a dose-dependent manner. Reactive oxygen species (ROS) generation other than of NADH oxidase origin, and subcellular interactions by internalized NSP also contributed to NSP-induced cell death. NSP persistently provoked receptor-interacting protein 1 Ser/Thr (RIP1) kinase and caspase 6 and 3/7 activation without altering caspase 8 activity and induced evident chromatolysis of necrosis in the later stage. These events proceeded along with increased ER stress and mitochondrial permeability, to final Cyt-C (Cytochrome C) release and AIF (apoptosis inducing factor) translocation, a hallmark of cell necroptosis. Fluorescent probing further manifested NSP traffic, mostly adherence on the cell surfaces, or via internalization, being compartmentalized in the nuclei, cytosols, and mitochondria. Pharmacological approaches with specific inhibitors suggested that endocytosis and particularly RIP1 kinase provocation mediate NSP-induced cell death independent of caspase activation. In conclusion, the necroptotic process contributes to most of the cell death induced by NSP due to membrane interactions/impaired integrity, ROS generation, and subcellular interactions by internalized NSP.
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spelling pubmed-76009612020-11-01 Cytotoxicity Produced by Silicate Nanoplatelets: Study of Cell Death Mechanisms Huang, Jie-Ting Chang, Ling-Chu Cheng, Chung-Ssu Lin, Jiang-Jen Huang, San-Yuan Chen, Shuen-Ei Toxins (Basel) Article Nano-silicate platelets (NSP), an exfoliated product from natural clays, have been validated for biosafety and as an effective supplement to alleviate mycotoxicosis. Since NSP induced noticeable cell death, we therefore investigated further the mechanism of cytotoxicity caused by NSP. Exposure to NSP impaired membrane integrity and caused cell death in a dose-dependent manner. Reactive oxygen species (ROS) generation other than of NADH oxidase origin, and subcellular interactions by internalized NSP also contributed to NSP-induced cell death. NSP persistently provoked receptor-interacting protein 1 Ser/Thr (RIP1) kinase and caspase 6 and 3/7 activation without altering caspase 8 activity and induced evident chromatolysis of necrosis in the later stage. These events proceeded along with increased ER stress and mitochondrial permeability, to final Cyt-C (Cytochrome C) release and AIF (apoptosis inducing factor) translocation, a hallmark of cell necroptosis. Fluorescent probing further manifested NSP traffic, mostly adherence on the cell surfaces, or via internalization, being compartmentalized in the nuclei, cytosols, and mitochondria. Pharmacological approaches with specific inhibitors suggested that endocytosis and particularly RIP1 kinase provocation mediate NSP-induced cell death independent of caspase activation. In conclusion, the necroptotic process contributes to most of the cell death induced by NSP due to membrane interactions/impaired integrity, ROS generation, and subcellular interactions by internalized NSP. MDPI 2020-09-29 /pmc/articles/PMC7600961/ /pubmed/33003487 http://dx.doi.org/10.3390/toxins12100623 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Huang, Jie-Ting
Chang, Ling-Chu
Cheng, Chung-Ssu
Lin, Jiang-Jen
Huang, San-Yuan
Chen, Shuen-Ei
Cytotoxicity Produced by Silicate Nanoplatelets: Study of Cell Death Mechanisms
title Cytotoxicity Produced by Silicate Nanoplatelets: Study of Cell Death Mechanisms
title_full Cytotoxicity Produced by Silicate Nanoplatelets: Study of Cell Death Mechanisms
title_fullStr Cytotoxicity Produced by Silicate Nanoplatelets: Study of Cell Death Mechanisms
title_full_unstemmed Cytotoxicity Produced by Silicate Nanoplatelets: Study of Cell Death Mechanisms
title_short Cytotoxicity Produced by Silicate Nanoplatelets: Study of Cell Death Mechanisms
title_sort cytotoxicity produced by silicate nanoplatelets: study of cell death mechanisms
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7600961/
https://www.ncbi.nlm.nih.gov/pubmed/33003487
http://dx.doi.org/10.3390/toxins12100623
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