Cargando…

IRE1α protects against osteoarthritis by regulating progranulin-dependent XBP1 splicing and collagen homeostasis

Osteoarthritis (OA) is a full-joint, multifactorial, degenerative and inflammatory disease that seriously affects the quality of life of patients due to its disabling and pain-causing properties. ER stress has been reported to be closely related to the progression of OA. The inositol-requiring enzym...

Descripción completa

Detalles Bibliográficos
Autores principales: Liang, Li, Zhang, Fengmei, Feng, Naibo, Kuang, Biao, Fan, Mengtian, Chen, Cheng, Pan, Yiming, Zhou, Pengfei, Geng, Nana, Li, Xingyue, Xian, Menglin, Deng, Lin, Li, Xiaoli, Kuang, Liang, Luo, Fengtao, Tan, Qiaoyan, Xie, Yangli, Guo, Fengjin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group UK 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10689778/
https://www.ncbi.nlm.nih.gov/pubmed/37907740
http://dx.doi.org/10.1038/s12276-023-01106-w
_version_ 1785152421966643200
author Liang, Li
Zhang, Fengmei
Feng, Naibo
Kuang, Biao
Fan, Mengtian
Chen, Cheng
Pan, Yiming
Zhou, Pengfei
Geng, Nana
Li, Xingyue
Xian, Menglin
Deng, Lin
Li, Xiaoli
Kuang, Liang
Luo, Fengtao
Tan, Qiaoyan
Xie, Yangli
Guo, Fengjin
author_facet Liang, Li
Zhang, Fengmei
Feng, Naibo
Kuang, Biao
Fan, Mengtian
Chen, Cheng
Pan, Yiming
Zhou, Pengfei
Geng, Nana
Li, Xingyue
Xian, Menglin
Deng, Lin
Li, Xiaoli
Kuang, Liang
Luo, Fengtao
Tan, Qiaoyan
Xie, Yangli
Guo, Fengjin
author_sort Liang, Li
collection PubMed
description Osteoarthritis (OA) is a full-joint, multifactorial, degenerative and inflammatory disease that seriously affects the quality of life of patients due to its disabling and pain-causing properties. ER stress has been reported to be closely related to the progression of OA. The inositol-requiring enzyme 1α/X-box-binding protein-1 spliced (IRE1α/XBP1s) pathway, which is highly expressed in the chondrocytes of OA patients, promotes the degradation and refolding of abnormal proteins during ER stress and maintains the stability of the ER environment of chondrocytes, but its function and the underlying mechanisms of how it contributes to the progression of OA remain unclear. This study investigates the role of IRE1α/ERN1 in OA. Specific deficiency of ERN1 in chondrocytes spontaneously resulted in OA-like cartilage destruction and accelerated OA progression in a surgically induced arthritis model. Local delivery of AdERN1 relieved degradation of the cartilage matrix and prevented OA development in an ACLT-mediated model. Mechanistically, progranulin (PGRN), an intracellular chaperone, binds to IRE1α, promoting its phosphorylation and splicing of XBP1u to generate XBP1s. XBP1s protects articular cartilage through TNF-α/ERK1/2 signaling and further maintains collagen homeostasis by regulating type II collagen expression. The chondroprotective effect of IRE1α/ERN1 is dependent on PGRN and XBP1s splicing. ERN1 deficiency accelerated cartilage degeneration in OA by reducing PGRN expression and XBP1s splicing, subsequently decreasing collagen II expression and triggering collagen structural abnormalities and an imbalance in collagen homeostasis. This study provides new insights into OA pathogenesis and the UPR and suggests that IRE1α/ERN1 may serve as a potential target for the treatment of joint degenerative diseases, including OA.
format Online
Article
Text
id pubmed-10689778
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher Nature Publishing Group UK
record_format MEDLINE/PubMed
spelling pubmed-106897782023-12-02 IRE1α protects against osteoarthritis by regulating progranulin-dependent XBP1 splicing and collagen homeostasis Liang, Li Zhang, Fengmei Feng, Naibo Kuang, Biao Fan, Mengtian Chen, Cheng Pan, Yiming Zhou, Pengfei Geng, Nana Li, Xingyue Xian, Menglin Deng, Lin Li, Xiaoli Kuang, Liang Luo, Fengtao Tan, Qiaoyan Xie, Yangli Guo, Fengjin Exp Mol Med Article Osteoarthritis (OA) is a full-joint, multifactorial, degenerative and inflammatory disease that seriously affects the quality of life of patients due to its disabling and pain-causing properties. ER stress has been reported to be closely related to the progression of OA. The inositol-requiring enzyme 1α/X-box-binding protein-1 spliced (IRE1α/XBP1s) pathway, which is highly expressed in the chondrocytes of OA patients, promotes the degradation and refolding of abnormal proteins during ER stress and maintains the stability of the ER environment of chondrocytes, but its function and the underlying mechanisms of how it contributes to the progression of OA remain unclear. This study investigates the role of IRE1α/ERN1 in OA. Specific deficiency of ERN1 in chondrocytes spontaneously resulted in OA-like cartilage destruction and accelerated OA progression in a surgically induced arthritis model. Local delivery of AdERN1 relieved degradation of the cartilage matrix and prevented OA development in an ACLT-mediated model. Mechanistically, progranulin (PGRN), an intracellular chaperone, binds to IRE1α, promoting its phosphorylation and splicing of XBP1u to generate XBP1s. XBP1s protects articular cartilage through TNF-α/ERK1/2 signaling and further maintains collagen homeostasis by regulating type II collagen expression. The chondroprotective effect of IRE1α/ERN1 is dependent on PGRN and XBP1s splicing. ERN1 deficiency accelerated cartilage degeneration in OA by reducing PGRN expression and XBP1s splicing, subsequently decreasing collagen II expression and triggering collagen structural abnormalities and an imbalance in collagen homeostasis. This study provides new insights into OA pathogenesis and the UPR and suggests that IRE1α/ERN1 may serve as a potential target for the treatment of joint degenerative diseases, including OA. Nature Publishing Group UK 2023-11-01 /pmc/articles/PMC10689778/ /pubmed/37907740 http://dx.doi.org/10.1038/s12276-023-01106-w Text en © The Author(s) 2023 https://creativecommons.org/licenses/by/4.0/Open Access This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in a credit line to the material. If material is not included in the article’s Creative Commons license and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Article
Liang, Li
Zhang, Fengmei
Feng, Naibo
Kuang, Biao
Fan, Mengtian
Chen, Cheng
Pan, Yiming
Zhou, Pengfei
Geng, Nana
Li, Xingyue
Xian, Menglin
Deng, Lin
Li, Xiaoli
Kuang, Liang
Luo, Fengtao
Tan, Qiaoyan
Xie, Yangli
Guo, Fengjin
IRE1α protects against osteoarthritis by regulating progranulin-dependent XBP1 splicing and collagen homeostasis
title IRE1α protects against osteoarthritis by regulating progranulin-dependent XBP1 splicing and collagen homeostasis
title_full IRE1α protects against osteoarthritis by regulating progranulin-dependent XBP1 splicing and collagen homeostasis
title_fullStr IRE1α protects against osteoarthritis by regulating progranulin-dependent XBP1 splicing and collagen homeostasis
title_full_unstemmed IRE1α protects against osteoarthritis by regulating progranulin-dependent XBP1 splicing and collagen homeostasis
title_short IRE1α protects against osteoarthritis by regulating progranulin-dependent XBP1 splicing and collagen homeostasis
title_sort ire1α protects against osteoarthritis by regulating progranulin-dependent xbp1 splicing and collagen homeostasis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10689778/
https://www.ncbi.nlm.nih.gov/pubmed/37907740
http://dx.doi.org/10.1038/s12276-023-01106-w
work_keys_str_mv AT liangli ire1aprotectsagainstosteoarthritisbyregulatingprogranulindependentxbp1splicingandcollagenhomeostasis
AT zhangfengmei ire1aprotectsagainstosteoarthritisbyregulatingprogranulindependentxbp1splicingandcollagenhomeostasis
AT fengnaibo ire1aprotectsagainstosteoarthritisbyregulatingprogranulindependentxbp1splicingandcollagenhomeostasis
AT kuangbiao ire1aprotectsagainstosteoarthritisbyregulatingprogranulindependentxbp1splicingandcollagenhomeostasis
AT fanmengtian ire1aprotectsagainstosteoarthritisbyregulatingprogranulindependentxbp1splicingandcollagenhomeostasis
AT chencheng ire1aprotectsagainstosteoarthritisbyregulatingprogranulindependentxbp1splicingandcollagenhomeostasis
AT panyiming ire1aprotectsagainstosteoarthritisbyregulatingprogranulindependentxbp1splicingandcollagenhomeostasis
AT zhoupengfei ire1aprotectsagainstosteoarthritisbyregulatingprogranulindependentxbp1splicingandcollagenhomeostasis
AT gengnana ire1aprotectsagainstosteoarthritisbyregulatingprogranulindependentxbp1splicingandcollagenhomeostasis
AT lixingyue ire1aprotectsagainstosteoarthritisbyregulatingprogranulindependentxbp1splicingandcollagenhomeostasis
AT xianmenglin ire1aprotectsagainstosteoarthritisbyregulatingprogranulindependentxbp1splicingandcollagenhomeostasis
AT denglin ire1aprotectsagainstosteoarthritisbyregulatingprogranulindependentxbp1splicingandcollagenhomeostasis
AT lixiaoli ire1aprotectsagainstosteoarthritisbyregulatingprogranulindependentxbp1splicingandcollagenhomeostasis
AT kuangliang ire1aprotectsagainstosteoarthritisbyregulatingprogranulindependentxbp1splicingandcollagenhomeostasis
AT luofengtao ire1aprotectsagainstosteoarthritisbyregulatingprogranulindependentxbp1splicingandcollagenhomeostasis
AT tanqiaoyan ire1aprotectsagainstosteoarthritisbyregulatingprogranulindependentxbp1splicingandcollagenhomeostasis
AT xieyangli ire1aprotectsagainstosteoarthritisbyregulatingprogranulindependentxbp1splicingandcollagenhomeostasis
AT guofengjin ire1aprotectsagainstosteoarthritisbyregulatingprogranulindependentxbp1splicingandcollagenhomeostasis