Cargando…

Ferroportin-Dependent Iron Homeostasis Protects against Oxidative Stress-Induced Nucleus Pulposus Cell Ferroptosis and Ameliorates Intervertebral Disc Degeneration In Vivo

Ferroptosis is a specialized form of regulated cell death that is charactered by iron-dependent lethal lipid peroxidation, a process associated with multiple diseases. However, its role in the pathogenesis of intervertebral disc degeneration (IVDD) is rarely investigated. This study is aimed at inve...

Descripción completa

Detalles Bibliográficos
Autores principales: Lu, Saideng, Song, Yu, Luo, Rongjin, Li, Shuai, Li, Gaocai, Wang, Kun, Liao, Zhiwei, Wang, Bingjin, Ke, Wencan, Xiang, Qian, Chen, Chao, Wu, Xinghuo, Zhang, Yukun, Ling, Li, Yang, Cao
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7889334/
https://www.ncbi.nlm.nih.gov/pubmed/33628376
http://dx.doi.org/10.1155/2021/6670497
_version_ 1783652285943906304
author Lu, Saideng
Song, Yu
Luo, Rongjin
Li, Shuai
Li, Gaocai
Wang, Kun
Liao, Zhiwei
Wang, Bingjin
Ke, Wencan
Xiang, Qian
Chen, Chao
Wu, Xinghuo
Zhang, Yukun
Ling, Li
Yang, Cao
author_facet Lu, Saideng
Song, Yu
Luo, Rongjin
Li, Shuai
Li, Gaocai
Wang, Kun
Liao, Zhiwei
Wang, Bingjin
Ke, Wencan
Xiang, Qian
Chen, Chao
Wu, Xinghuo
Zhang, Yukun
Ling, Li
Yang, Cao
author_sort Lu, Saideng
collection PubMed
description Ferroptosis is a specialized form of regulated cell death that is charactered by iron-dependent lethal lipid peroxidation, a process associated with multiple diseases. However, its role in the pathogenesis of intervertebral disc degeneration (IVDD) is rarely investigated. This study is aimed at investigating the role of ferroptosis in oxidative stress- (OS-) induced nucleus pulposus cell (NPC) decline and the pathogenesis of IVDD and determine the underlying regulatory mechanisms. We used tert-butyl hydroperoxide (TBHP) to simulate OS conditions around human NPCs. Flow cytometry and transmission electron microscopy were used to identify ferroptosis, while iron assay kit, Perl's staining, and western blotting were performed to assay the intracellular iron levels. A ferroportin- (FPN-) lentivirus and FPN-siRNA were constructed and used to explore the relationship between FPN, intracellular iron homeostasis, and ferroptosis. Furthermore, hinokitiol, a bioactive compound known to specifically resist OS and restore FPN function, was evaluated for its therapeutic role in IVDD both in vitro and in vivo. The results indicated that intercellular iron overload plays an essential role in TBHP-induced ferroptosis of human NPCs. Mechanistically, FPN dysregulation is responsible for intercellular iron overload under OS. The increase in nuclear translocation of metal-regulatory transcription factor 1 (MTF1) restored the function of FPN, abolished the intercellular iron overload, and protected cells against ferroptosis. Additionally, hinokitiol enhanced the nuclear translocation of MTF1 by suppressing the JNK pathway and ameliorated the progression of IVDD in vivo. Taken together, our results demonstrate that ferroptosis and FPN dysfunction are involved in the NPC depletion and the pathogenesis of IVDD under OS. To the best of our knowledge, this is the first study to demonstrate the protective role of FPN in ferroptosis of NPCs, suggesting its potential used as a novel therapeutic target against IVDD.
format Online
Article
Text
id pubmed-7889334
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher Hindawi
record_format MEDLINE/PubMed
spelling pubmed-78893342021-02-23 Ferroportin-Dependent Iron Homeostasis Protects against Oxidative Stress-Induced Nucleus Pulposus Cell Ferroptosis and Ameliorates Intervertebral Disc Degeneration In Vivo Lu, Saideng Song, Yu Luo, Rongjin Li, Shuai Li, Gaocai Wang, Kun Liao, Zhiwei Wang, Bingjin Ke, Wencan Xiang, Qian Chen, Chao Wu, Xinghuo Zhang, Yukun Ling, Li Yang, Cao Oxid Med Cell Longev Research Article Ferroptosis is a specialized form of regulated cell death that is charactered by iron-dependent lethal lipid peroxidation, a process associated with multiple diseases. However, its role in the pathogenesis of intervertebral disc degeneration (IVDD) is rarely investigated. This study is aimed at investigating the role of ferroptosis in oxidative stress- (OS-) induced nucleus pulposus cell (NPC) decline and the pathogenesis of IVDD and determine the underlying regulatory mechanisms. We used tert-butyl hydroperoxide (TBHP) to simulate OS conditions around human NPCs. Flow cytometry and transmission electron microscopy were used to identify ferroptosis, while iron assay kit, Perl's staining, and western blotting were performed to assay the intracellular iron levels. A ferroportin- (FPN-) lentivirus and FPN-siRNA were constructed and used to explore the relationship between FPN, intracellular iron homeostasis, and ferroptosis. Furthermore, hinokitiol, a bioactive compound known to specifically resist OS and restore FPN function, was evaluated for its therapeutic role in IVDD both in vitro and in vivo. The results indicated that intercellular iron overload plays an essential role in TBHP-induced ferroptosis of human NPCs. Mechanistically, FPN dysregulation is responsible for intercellular iron overload under OS. The increase in nuclear translocation of metal-regulatory transcription factor 1 (MTF1) restored the function of FPN, abolished the intercellular iron overload, and protected cells against ferroptosis. Additionally, hinokitiol enhanced the nuclear translocation of MTF1 by suppressing the JNK pathway and ameliorated the progression of IVDD in vivo. Taken together, our results demonstrate that ferroptosis and FPN dysfunction are involved in the NPC depletion and the pathogenesis of IVDD under OS. To the best of our knowledge, this is the first study to demonstrate the protective role of FPN in ferroptosis of NPCs, suggesting its potential used as a novel therapeutic target against IVDD. Hindawi 2021-02-10 /pmc/articles/PMC7889334/ /pubmed/33628376 http://dx.doi.org/10.1155/2021/6670497 Text en Copyright © 2021 Saideng Lu et al. https://creativecommons.org/licenses/by/4.0/ 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
Lu, Saideng
Song, Yu
Luo, Rongjin
Li, Shuai
Li, Gaocai
Wang, Kun
Liao, Zhiwei
Wang, Bingjin
Ke, Wencan
Xiang, Qian
Chen, Chao
Wu, Xinghuo
Zhang, Yukun
Ling, Li
Yang, Cao
Ferroportin-Dependent Iron Homeostasis Protects against Oxidative Stress-Induced Nucleus Pulposus Cell Ferroptosis and Ameliorates Intervertebral Disc Degeneration In Vivo
title Ferroportin-Dependent Iron Homeostasis Protects against Oxidative Stress-Induced Nucleus Pulposus Cell Ferroptosis and Ameliorates Intervertebral Disc Degeneration In Vivo
title_full Ferroportin-Dependent Iron Homeostasis Protects against Oxidative Stress-Induced Nucleus Pulposus Cell Ferroptosis and Ameliorates Intervertebral Disc Degeneration In Vivo
title_fullStr Ferroportin-Dependent Iron Homeostasis Protects against Oxidative Stress-Induced Nucleus Pulposus Cell Ferroptosis and Ameliorates Intervertebral Disc Degeneration In Vivo
title_full_unstemmed Ferroportin-Dependent Iron Homeostasis Protects against Oxidative Stress-Induced Nucleus Pulposus Cell Ferroptosis and Ameliorates Intervertebral Disc Degeneration In Vivo
title_short Ferroportin-Dependent Iron Homeostasis Protects against Oxidative Stress-Induced Nucleus Pulposus Cell Ferroptosis and Ameliorates Intervertebral Disc Degeneration In Vivo
title_sort ferroportin-dependent iron homeostasis protects against oxidative stress-induced nucleus pulposus cell ferroptosis and ameliorates intervertebral disc degeneration in vivo
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7889334/
https://www.ncbi.nlm.nih.gov/pubmed/33628376
http://dx.doi.org/10.1155/2021/6670497
work_keys_str_mv AT lusaideng ferroportindependentironhomeostasisprotectsagainstoxidativestressinducednucleuspulposuscellferroptosisandamelioratesintervertebraldiscdegenerationinvivo
AT songyu ferroportindependentironhomeostasisprotectsagainstoxidativestressinducednucleuspulposuscellferroptosisandamelioratesintervertebraldiscdegenerationinvivo
AT luorongjin ferroportindependentironhomeostasisprotectsagainstoxidativestressinducednucleuspulposuscellferroptosisandamelioratesintervertebraldiscdegenerationinvivo
AT lishuai ferroportindependentironhomeostasisprotectsagainstoxidativestressinducednucleuspulposuscellferroptosisandamelioratesintervertebraldiscdegenerationinvivo
AT ligaocai ferroportindependentironhomeostasisprotectsagainstoxidativestressinducednucleuspulposuscellferroptosisandamelioratesintervertebraldiscdegenerationinvivo
AT wangkun ferroportindependentironhomeostasisprotectsagainstoxidativestressinducednucleuspulposuscellferroptosisandamelioratesintervertebraldiscdegenerationinvivo
AT liaozhiwei ferroportindependentironhomeostasisprotectsagainstoxidativestressinducednucleuspulposuscellferroptosisandamelioratesintervertebraldiscdegenerationinvivo
AT wangbingjin ferroportindependentironhomeostasisprotectsagainstoxidativestressinducednucleuspulposuscellferroptosisandamelioratesintervertebraldiscdegenerationinvivo
AT kewencan ferroportindependentironhomeostasisprotectsagainstoxidativestressinducednucleuspulposuscellferroptosisandamelioratesintervertebraldiscdegenerationinvivo
AT xiangqian ferroportindependentironhomeostasisprotectsagainstoxidativestressinducednucleuspulposuscellferroptosisandamelioratesintervertebraldiscdegenerationinvivo
AT chenchao ferroportindependentironhomeostasisprotectsagainstoxidativestressinducednucleuspulposuscellferroptosisandamelioratesintervertebraldiscdegenerationinvivo
AT wuxinghuo ferroportindependentironhomeostasisprotectsagainstoxidativestressinducednucleuspulposuscellferroptosisandamelioratesintervertebraldiscdegenerationinvivo
AT zhangyukun ferroportindependentironhomeostasisprotectsagainstoxidativestressinducednucleuspulposuscellferroptosisandamelioratesintervertebraldiscdegenerationinvivo
AT lingli ferroportindependentironhomeostasisprotectsagainstoxidativestressinducednucleuspulposuscellferroptosisandamelioratesintervertebraldiscdegenerationinvivo
AT yangcao ferroportindependentironhomeostasisprotectsagainstoxidativestressinducednucleuspulposuscellferroptosisandamelioratesintervertebraldiscdegenerationinvivo