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Pregnane X receptor (PXR) deficiency protects against spinal cord injury by activating NRF2/HO‐1 pathway

INTRODUCTION: As a devastating neurological disease, spinal cord injury (SCI) results in severe tissue loss and neurological dysfunction. Pregnane X receptor (PXR) is a ligand‐activated nuclear receptor with a major regulatory role in xenobiotic and endobiotic metabolism and recently has been implic...

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Autores principales: Xuan, Li‐Na, Hu, Zhen‐Xin, Jiang, Zhen‐Fu, Zhang, Cong, Sun, Xiao‐Wan, Ming, Wen‐Hua, Liu, Hui‐Tao, Qiao, Rong‐Fang, Shen, Lin‐Jie, Liu, Shao‐Bo, Wang, Guan‐Yu, Wen, Lin, Luan, Zhi‐Lin, Yin, Jian
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10580351/
https://www.ncbi.nlm.nih.gov/pubmed/37269088
http://dx.doi.org/10.1111/cns.14279
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author Xuan, Li‐Na
Hu, Zhen‐Xin
Jiang, Zhen‐Fu
Zhang, Cong
Sun, Xiao‐Wan
Ming, Wen‐Hua
Liu, Hui‐Tao
Qiao, Rong‐Fang
Shen, Lin‐Jie
Liu, Shao‐Bo
Wang, Guan‐Yu
Wen, Lin
Luan, Zhi‐Lin
Yin, Jian
author_facet Xuan, Li‐Na
Hu, Zhen‐Xin
Jiang, Zhen‐Fu
Zhang, Cong
Sun, Xiao‐Wan
Ming, Wen‐Hua
Liu, Hui‐Tao
Qiao, Rong‐Fang
Shen, Lin‐Jie
Liu, Shao‐Bo
Wang, Guan‐Yu
Wen, Lin
Luan, Zhi‐Lin
Yin, Jian
author_sort Xuan, Li‐Na
collection PubMed
description INTRODUCTION: As a devastating neurological disease, spinal cord injury (SCI) results in severe tissue loss and neurological dysfunction. Pregnane X receptor (PXR) is a ligand‐activated nuclear receptor with a major regulatory role in xenobiotic and endobiotic metabolism and recently has been implicated in the central nervous system. In the present study, we aimed to investigate the role and mechanism of PXR in SCI. METHODS: The clip‐compressive SCI model was performed in male wild‐type C57BL/6 (PXR(+/+)) and PXR‐knockout (PXR(−/−)) mice. The N2a H(2)O(2)‐induced injury model mimicked the pathological process of SCI in vitro. Pregnenolone 16α‐carbonitrile (PCN), a mouse‐specific PXR agonist, was used to activate PXR in vivo and in vitro. The siRNA was applied to knock down the PXR expression in vitro. Transcriptome sequencing analysis was performed to discover the relevant mechanism, and the NRF2 inhibitor ML385 was used to validate the involvement of PXR in influencing the NRF2/HO‐1 pathway in the SCI process. RESULTS: The expression of PXR decreased after SCI and reached a minimum on the third day. In vivo, PXR knockout significantly improved the motor function of mice after SCI, meanwhile, inhibited apoptosis, inflammation, and oxidative stress induced by SCI. On the contrary, activation of PXR by PCN negatively influenced the recovery of SCI. Mechanistically, transcriptome sequencing analysis revealed that PXR activation downregulated the mRNA level of heme oxygenase‐1 (HO‐1) after SCI. We further verified that PXR deficiency activated the NRF2/HO‐1 pathway and PXR activation inhibited this pathway in vitro. CONCLUSION: PXR is involved in the recovery of motor function after SCI by regulating NRF2/HO‐1 pathway.
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spelling pubmed-105803512023-10-18 Pregnane X receptor (PXR) deficiency protects against spinal cord injury by activating NRF2/HO‐1 pathway Xuan, Li‐Na Hu, Zhen‐Xin Jiang, Zhen‐Fu Zhang, Cong Sun, Xiao‐Wan Ming, Wen‐Hua Liu, Hui‐Tao Qiao, Rong‐Fang Shen, Lin‐Jie Liu, Shao‐Bo Wang, Guan‐Yu Wen, Lin Luan, Zhi‐Lin Yin, Jian CNS Neurosci Ther Original Articles INTRODUCTION: As a devastating neurological disease, spinal cord injury (SCI) results in severe tissue loss and neurological dysfunction. Pregnane X receptor (PXR) is a ligand‐activated nuclear receptor with a major regulatory role in xenobiotic and endobiotic metabolism and recently has been implicated in the central nervous system. In the present study, we aimed to investigate the role and mechanism of PXR in SCI. METHODS: The clip‐compressive SCI model was performed in male wild‐type C57BL/6 (PXR(+/+)) and PXR‐knockout (PXR(−/−)) mice. The N2a H(2)O(2)‐induced injury model mimicked the pathological process of SCI in vitro. Pregnenolone 16α‐carbonitrile (PCN), a mouse‐specific PXR agonist, was used to activate PXR in vivo and in vitro. The siRNA was applied to knock down the PXR expression in vitro. Transcriptome sequencing analysis was performed to discover the relevant mechanism, and the NRF2 inhibitor ML385 was used to validate the involvement of PXR in influencing the NRF2/HO‐1 pathway in the SCI process. RESULTS: The expression of PXR decreased after SCI and reached a minimum on the third day. In vivo, PXR knockout significantly improved the motor function of mice after SCI, meanwhile, inhibited apoptosis, inflammation, and oxidative stress induced by SCI. On the contrary, activation of PXR by PCN negatively influenced the recovery of SCI. Mechanistically, transcriptome sequencing analysis revealed that PXR activation downregulated the mRNA level of heme oxygenase‐1 (HO‐1) after SCI. We further verified that PXR deficiency activated the NRF2/HO‐1 pathway and PXR activation inhibited this pathway in vitro. CONCLUSION: PXR is involved in the recovery of motor function after SCI by regulating NRF2/HO‐1 pathway. John Wiley and Sons Inc. 2023-06-02 /pmc/articles/PMC10580351/ /pubmed/37269088 http://dx.doi.org/10.1111/cns.14279 Text en © 2023 The Authors. CNS Neuroscience & Therapeutics published by John Wiley & Sons Ltd. https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Articles
Xuan, Li‐Na
Hu, Zhen‐Xin
Jiang, Zhen‐Fu
Zhang, Cong
Sun, Xiao‐Wan
Ming, Wen‐Hua
Liu, Hui‐Tao
Qiao, Rong‐Fang
Shen, Lin‐Jie
Liu, Shao‐Bo
Wang, Guan‐Yu
Wen, Lin
Luan, Zhi‐Lin
Yin, Jian
Pregnane X receptor (PXR) deficiency protects against spinal cord injury by activating NRF2/HO‐1 pathway
title Pregnane X receptor (PXR) deficiency protects against spinal cord injury by activating NRF2/HO‐1 pathway
title_full Pregnane X receptor (PXR) deficiency protects against spinal cord injury by activating NRF2/HO‐1 pathway
title_fullStr Pregnane X receptor (PXR) deficiency protects against spinal cord injury by activating NRF2/HO‐1 pathway
title_full_unstemmed Pregnane X receptor (PXR) deficiency protects against spinal cord injury by activating NRF2/HO‐1 pathway
title_short Pregnane X receptor (PXR) deficiency protects against spinal cord injury by activating NRF2/HO‐1 pathway
title_sort pregnane x receptor (pxr) deficiency protects against spinal cord injury by activating nrf2/ho‐1 pathway
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10580351/
https://www.ncbi.nlm.nih.gov/pubmed/37269088
http://dx.doi.org/10.1111/cns.14279
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