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Sesquiterpene Lactones Inhibit Advanced Oxidation Protein Product-Induced MCP-1 Expression in Podocytes via an IKK/NF-κB-Dependent Mechanism

Inflammation is a relevant factor in the pathogenesis of diabetes nephropathy (DN). Sesquiterpene lactones (SLs), originally isolated from Tanacetum parthenium, have been reported to exhibit anti-inflammatory effects but few studies have examined their effects on DN. To determine whether advanced ox...

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Autores principales: Zhao, Yan, Chen, Si-jia, Wang, Jian-cheng, Niu, Hong-xin, Jia, Qian-qian, Chen, Xiao-wen, Du, Xiao-yan, Lu, Lu, Huang, Bo, Zhang, Quan, Chen, Yue, Long, Hai-bo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi Publishing Corporation 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4309307/
https://www.ncbi.nlm.nih.gov/pubmed/25664142
http://dx.doi.org/10.1155/2015/934058
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author Zhao, Yan
Chen, Si-jia
Wang, Jian-cheng
Niu, Hong-xin
Jia, Qian-qian
Chen, Xiao-wen
Du, Xiao-yan
Lu, Lu
Huang, Bo
Zhang, Quan
Chen, Yue
Long, Hai-bo
author_facet Zhao, Yan
Chen, Si-jia
Wang, Jian-cheng
Niu, Hong-xin
Jia, Qian-qian
Chen, Xiao-wen
Du, Xiao-yan
Lu, Lu
Huang, Bo
Zhang, Quan
Chen, Yue
Long, Hai-bo
author_sort Zhao, Yan
collection PubMed
description Inflammation is a relevant factor in the pathogenesis of diabetes nephropathy (DN). Sesquiterpene lactones (SLs), originally isolated from Tanacetum parthenium, have been reported to exhibit anti-inflammatory effects but few studies have examined their effects on DN. To determine whether advanced oxidation protein products (AOPPs) can induce the expression of chemokine monocyte chemoattractant protein- (MCP-) 1 in cultured mouse podocytes and to explore the mechanisms of the potential renoprotection of SLs, we treated podocytes with AOPPs and SLs (parthenolide and its derivatives micheliolide, compound 1, and compound 2). MCP-1 mRNA and protein expression were tested using quantitative real-time PCR and ELISA, respectively, and the protein levels of IKKβ, phospho-IKKβ, IκBα, NF-κB p65, phospho-NF-κB p65, and tubulin were analyzed by Western blotting. AOPPs activated the expression of MCP-1 mRNA and protein in a dose- and time-dependent manner, activated IKKβ and NF-κB p65, and promoted IκBα degradation. The IKK/NF-κB inhibitor parthenolide decreased AOPP-induced MCP-1 expression. Pretreatment with SLs inhibited MCP-1 mRNA and protein expression and suppressed IKKβ and NF-κB p65 phosphorylation and IκBα degradation. Taken together, these findings provide a novel explanation for the anti-inflammatory effects of SLs that will ultimately benefit DN and potentially other inflammatory and immune renal diseases.
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spelling pubmed-43093072015-02-08 Sesquiterpene Lactones Inhibit Advanced Oxidation Protein Product-Induced MCP-1 Expression in Podocytes via an IKK/NF-κB-Dependent Mechanism Zhao, Yan Chen, Si-jia Wang, Jian-cheng Niu, Hong-xin Jia, Qian-qian Chen, Xiao-wen Du, Xiao-yan Lu, Lu Huang, Bo Zhang, Quan Chen, Yue Long, Hai-bo Oxid Med Cell Longev Research Article Inflammation is a relevant factor in the pathogenesis of diabetes nephropathy (DN). Sesquiterpene lactones (SLs), originally isolated from Tanacetum parthenium, have been reported to exhibit anti-inflammatory effects but few studies have examined their effects on DN. To determine whether advanced oxidation protein products (AOPPs) can induce the expression of chemokine monocyte chemoattractant protein- (MCP-) 1 in cultured mouse podocytes and to explore the mechanisms of the potential renoprotection of SLs, we treated podocytes with AOPPs and SLs (parthenolide and its derivatives micheliolide, compound 1, and compound 2). MCP-1 mRNA and protein expression were tested using quantitative real-time PCR and ELISA, respectively, and the protein levels of IKKβ, phospho-IKKβ, IκBα, NF-κB p65, phospho-NF-κB p65, and tubulin were analyzed by Western blotting. AOPPs activated the expression of MCP-1 mRNA and protein in a dose- and time-dependent manner, activated IKKβ and NF-κB p65, and promoted IκBα degradation. The IKK/NF-κB inhibitor parthenolide decreased AOPP-induced MCP-1 expression. Pretreatment with SLs inhibited MCP-1 mRNA and protein expression and suppressed IKKβ and NF-κB p65 phosphorylation and IκBα degradation. Taken together, these findings provide a novel explanation for the anti-inflammatory effects of SLs that will ultimately benefit DN and potentially other inflammatory and immune renal diseases. Hindawi Publishing Corporation 2015 2015-01-12 /pmc/articles/PMC4309307/ /pubmed/25664142 http://dx.doi.org/10.1155/2015/934058 Text en Copyright © 2015 Yan Zhao et al. https://creativecommons.org/licenses/by/3.0/ This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Zhao, Yan
Chen, Si-jia
Wang, Jian-cheng
Niu, Hong-xin
Jia, Qian-qian
Chen, Xiao-wen
Du, Xiao-yan
Lu, Lu
Huang, Bo
Zhang, Quan
Chen, Yue
Long, Hai-bo
Sesquiterpene Lactones Inhibit Advanced Oxidation Protein Product-Induced MCP-1 Expression in Podocytes via an IKK/NF-κB-Dependent Mechanism
title Sesquiterpene Lactones Inhibit Advanced Oxidation Protein Product-Induced MCP-1 Expression in Podocytes via an IKK/NF-κB-Dependent Mechanism
title_full Sesquiterpene Lactones Inhibit Advanced Oxidation Protein Product-Induced MCP-1 Expression in Podocytes via an IKK/NF-κB-Dependent Mechanism
title_fullStr Sesquiterpene Lactones Inhibit Advanced Oxidation Protein Product-Induced MCP-1 Expression in Podocytes via an IKK/NF-κB-Dependent Mechanism
title_full_unstemmed Sesquiterpene Lactones Inhibit Advanced Oxidation Protein Product-Induced MCP-1 Expression in Podocytes via an IKK/NF-κB-Dependent Mechanism
title_short Sesquiterpene Lactones Inhibit Advanced Oxidation Protein Product-Induced MCP-1 Expression in Podocytes via an IKK/NF-κB-Dependent Mechanism
title_sort sesquiterpene lactones inhibit advanced oxidation protein product-induced mcp-1 expression in podocytes via an ikk/nf-κb-dependent mechanism
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4309307/
https://www.ncbi.nlm.nih.gov/pubmed/25664142
http://dx.doi.org/10.1155/2015/934058
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