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TFE3, a potential therapeutic target for Spinal Cord Injury via augmenting autophagy flux and alleviating ER stress

Background and Aim: Increasing evidence suggests that spinal cord injury (SCI)-induced defects in autophagic flux may contribute to an impaired ability for neurological repair following injury. Transcription factor E3 (TFE3) plays a crucial role in oxidative metabolism, lysosomal homeostasis, and au...

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Autores principales: Zhou, Kailiang, Zheng, Zhilong, Li, Yao, Han, Wen, Zhang, Jing, Mao, Yuqin, Chen, Huanwen, Zhang, Wanying, Liu, Mi, Xie, Ling, Zhang, Hongyu, Xu, Huazi, Xiao, Jian
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Ivyspring International Publisher 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7415792/
https://www.ncbi.nlm.nih.gov/pubmed/32802192
http://dx.doi.org/10.7150/thno.46566
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author Zhou, Kailiang
Zheng, Zhilong
Li, Yao
Han, Wen
Zhang, Jing
Mao, Yuqin
Chen, Huanwen
Zhang, Wanying
Liu, Mi
Xie, Ling
Zhang, Hongyu
Xu, Huazi
Xiao, Jian
author_facet Zhou, Kailiang
Zheng, Zhilong
Li, Yao
Han, Wen
Zhang, Jing
Mao, Yuqin
Chen, Huanwen
Zhang, Wanying
Liu, Mi
Xie, Ling
Zhang, Hongyu
Xu, Huazi
Xiao, Jian
author_sort Zhou, Kailiang
collection PubMed
description Background and Aim: Increasing evidence suggests that spinal cord injury (SCI)-induced defects in autophagic flux may contribute to an impaired ability for neurological repair following injury. Transcription factor E3 (TFE3) plays a crucial role in oxidative metabolism, lysosomal homeostasis, and autophagy induction. Here, we investigated the role of TFE3 in modulating autophagy following SCI and explored its impact on neurological recovery. Methods: Histological analysis via HE, Nissl and Mason staining, survival rate analysis, and behavioral testing via BMS and footprint analysis were used to determine functional recovery after SCI. Quantitative real-time polymerase chain reaction, Western blotting, immunofluorescence, TUNEL staining, enzyme-linked immunosorbent assays, and immunoprecipitation were applied to examine levels of autophagy flux, ER-stress-induced apoptosis, oxidative stress, and AMPK related signaling pathways. In vitro studies using PC12 cells were performed to discern the relationship between ROS accumulation and autophagy flux blockade. Results: Our results showed that in SCI, defects in autophagy flux contributes to ER stress, leading to neuronal death. Furthermore, SCI enhances the production of reactive oxygen species (ROS) that induce lysosomal dysfunction to impair autophagy flux. We also showed that TFE3 levels are inversely correlated with ROS levels, and increased TFE3 levels can lead to improved outcomes. Finally, we showed that activation of TFE3 after SCI is partly regulated by AMPK-mTOR and AMPK-SKP2-CARM1 signaling pathways. Conclusions: TFE3 is an important regulator in ROS-mediated autophagy dysfunction following SCI, and TFE3 may serve as a promising target for developing treatments for SCI.
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spelling pubmed-74157922020-08-13 TFE3, a potential therapeutic target for Spinal Cord Injury via augmenting autophagy flux and alleviating ER stress Zhou, Kailiang Zheng, Zhilong Li, Yao Han, Wen Zhang, Jing Mao, Yuqin Chen, Huanwen Zhang, Wanying Liu, Mi Xie, Ling Zhang, Hongyu Xu, Huazi Xiao, Jian Theranostics Research Paper Background and Aim: Increasing evidence suggests that spinal cord injury (SCI)-induced defects in autophagic flux may contribute to an impaired ability for neurological repair following injury. Transcription factor E3 (TFE3) plays a crucial role in oxidative metabolism, lysosomal homeostasis, and autophagy induction. Here, we investigated the role of TFE3 in modulating autophagy following SCI and explored its impact on neurological recovery. Methods: Histological analysis via HE, Nissl and Mason staining, survival rate analysis, and behavioral testing via BMS and footprint analysis were used to determine functional recovery after SCI. Quantitative real-time polymerase chain reaction, Western blotting, immunofluorescence, TUNEL staining, enzyme-linked immunosorbent assays, and immunoprecipitation were applied to examine levels of autophagy flux, ER-stress-induced apoptosis, oxidative stress, and AMPK related signaling pathways. In vitro studies using PC12 cells were performed to discern the relationship between ROS accumulation and autophagy flux blockade. Results: Our results showed that in SCI, defects in autophagy flux contributes to ER stress, leading to neuronal death. Furthermore, SCI enhances the production of reactive oxygen species (ROS) that induce lysosomal dysfunction to impair autophagy flux. We also showed that TFE3 levels are inversely correlated with ROS levels, and increased TFE3 levels can lead to improved outcomes. Finally, we showed that activation of TFE3 after SCI is partly regulated by AMPK-mTOR and AMPK-SKP2-CARM1 signaling pathways. Conclusions: TFE3 is an important regulator in ROS-mediated autophagy dysfunction following SCI, and TFE3 may serve as a promising target for developing treatments for SCI. Ivyspring International Publisher 2020-07-23 /pmc/articles/PMC7415792/ /pubmed/32802192 http://dx.doi.org/10.7150/thno.46566 Text en © The author(s) This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/). See http://ivyspring.com/terms for full terms and conditions.
spellingShingle Research Paper
Zhou, Kailiang
Zheng, Zhilong
Li, Yao
Han, Wen
Zhang, Jing
Mao, Yuqin
Chen, Huanwen
Zhang, Wanying
Liu, Mi
Xie, Ling
Zhang, Hongyu
Xu, Huazi
Xiao, Jian
TFE3, a potential therapeutic target for Spinal Cord Injury via augmenting autophagy flux and alleviating ER stress
title TFE3, a potential therapeutic target for Spinal Cord Injury via augmenting autophagy flux and alleviating ER stress
title_full TFE3, a potential therapeutic target for Spinal Cord Injury via augmenting autophagy flux and alleviating ER stress
title_fullStr TFE3, a potential therapeutic target for Spinal Cord Injury via augmenting autophagy flux and alleviating ER stress
title_full_unstemmed TFE3, a potential therapeutic target for Spinal Cord Injury via augmenting autophagy flux and alleviating ER stress
title_short TFE3, a potential therapeutic target for Spinal Cord Injury via augmenting autophagy flux and alleviating ER stress
title_sort tfe3, a potential therapeutic target for spinal cord injury via augmenting autophagy flux and alleviating er stress
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7415792/
https://www.ncbi.nlm.nih.gov/pubmed/32802192
http://dx.doi.org/10.7150/thno.46566
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