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Over-activation of TRPM2 ion channel accelerates blood-spinal cord barrier destruction in diabetes combined with spinal cord injury rat

Spinal cord injury (SCI) is a devastating neurological disorder that often results in loss of motor and sensory function. Diabetes facilitates the blood-spinal cord barrier (BSCB) destruction and aggravates SCI recovery. However, the molecular mechanism underlying it is still unclear. Our study has...

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Autores principales: Zhang, Susu, Zhao, Jiaxin, Wu, Man, Zhou, Yongxiu, Wu, Xuejuan, Du, Anyu, Tao, Yibing, Huang, Shanshan, Cai, Shufang, Zhou, Mei, Wei, Tao, Zhang, Yanren, Xie, Ling, Wu, Yanqing, Xiao, Jian
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Ivyspring International Publisher 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10197895/
https://www.ncbi.nlm.nih.gov/pubmed/37215981
http://dx.doi.org/10.7150/ijbs.80672
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author Zhang, Susu
Zhao, Jiaxin
Wu, Man
Zhou, Yongxiu
Wu, Xuejuan
Du, Anyu
Tao, Yibing
Huang, Shanshan
Cai, Shufang
Zhou, Mei
Wei, Tao
Zhang, Yanren
Xie, Ling
Wu, Yanqing
Xiao, Jian
author_facet Zhang, Susu
Zhao, Jiaxin
Wu, Man
Zhou, Yongxiu
Wu, Xuejuan
Du, Anyu
Tao, Yibing
Huang, Shanshan
Cai, Shufang
Zhou, Mei
Wei, Tao
Zhang, Yanren
Xie, Ling
Wu, Yanqing
Xiao, Jian
author_sort Zhang, Susu
collection PubMed
description Spinal cord injury (SCI) is a devastating neurological disorder that often results in loss of motor and sensory function. Diabetes facilitates the blood-spinal cord barrier (BSCB) destruction and aggravates SCI recovery. However, the molecular mechanism underlying it is still unclear. Our study has focused on transient receptor potential melastatin 2 (TRPM2) channel and investigated its regulatory role on integrity and function of BSCB in diabetes combined with SCI rat. We have confirmed that diabetes is obviously not conductive to SCI recovery through accelerates BSCB destruction. Endothelial cells (ECs) are the important component of BSCB. It was observed that diabetes significantly worsens mitochondrial dysfunction and triggers excessive apoptosis of ECs in spinal cord from SCI rat. Moreover, diabetes impeded neovascularization in spinal cord from SCI rat with decreases of VEGF and ANG1. TRPM2 acts as a cellular sensor of ROS. Our mechanistic studies showed that diabetes significantly induces elevated ROS level to activate TRPM2 ion channel of ECs. Then, TRPM2 channel mediated the Ca(2+) influx and subsequently activated p-CaMKII/eNOS pathway, and which in turn triggered the ROS production. Consequently, over-activation of TRPM2 ion channel results in excessive apoptosis and weaker angiogenesis during SCI recovery. Inhibition of TRPM2 with 2-Aminoethyl diphenylborinate (2-APB) or TRPM2 siRNA will ameliorate the apoptosis of ECs and promote angiogenesis, subsequently enhance BSCB integrity and improve the locomotor function recovery of diabetes combined with SCI rat. In conclusion, TRPM2 channel may be a key target for the treatment of diabetes combined with SCI rat.
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spelling pubmed-101978952023-05-20 Over-activation of TRPM2 ion channel accelerates blood-spinal cord barrier destruction in diabetes combined with spinal cord injury rat Zhang, Susu Zhao, Jiaxin Wu, Man Zhou, Yongxiu Wu, Xuejuan Du, Anyu Tao, Yibing Huang, Shanshan Cai, Shufang Zhou, Mei Wei, Tao Zhang, Yanren Xie, Ling Wu, Yanqing Xiao, Jian Int J Biol Sci Research Paper Spinal cord injury (SCI) is a devastating neurological disorder that often results in loss of motor and sensory function. Diabetes facilitates the blood-spinal cord barrier (BSCB) destruction and aggravates SCI recovery. However, the molecular mechanism underlying it is still unclear. Our study has focused on transient receptor potential melastatin 2 (TRPM2) channel and investigated its regulatory role on integrity and function of BSCB in diabetes combined with SCI rat. We have confirmed that diabetes is obviously not conductive to SCI recovery through accelerates BSCB destruction. Endothelial cells (ECs) are the important component of BSCB. It was observed that diabetes significantly worsens mitochondrial dysfunction and triggers excessive apoptosis of ECs in spinal cord from SCI rat. Moreover, diabetes impeded neovascularization in spinal cord from SCI rat with decreases of VEGF and ANG1. TRPM2 acts as a cellular sensor of ROS. Our mechanistic studies showed that diabetes significantly induces elevated ROS level to activate TRPM2 ion channel of ECs. Then, TRPM2 channel mediated the Ca(2+) influx and subsequently activated p-CaMKII/eNOS pathway, and which in turn triggered the ROS production. Consequently, over-activation of TRPM2 ion channel results in excessive apoptosis and weaker angiogenesis during SCI recovery. Inhibition of TRPM2 with 2-Aminoethyl diphenylborinate (2-APB) or TRPM2 siRNA will ameliorate the apoptosis of ECs and promote angiogenesis, subsequently enhance BSCB integrity and improve the locomotor function recovery of diabetes combined with SCI rat. In conclusion, TRPM2 channel may be a key target for the treatment of diabetes combined with SCI rat. Ivyspring International Publisher 2023-05-08 /pmc/articles/PMC10197895/ /pubmed/37215981 http://dx.doi.org/10.7150/ijbs.80672 Text en © The author(s) https://creativecommons.org/licenses/by/4.0/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
Zhang, Susu
Zhao, Jiaxin
Wu, Man
Zhou, Yongxiu
Wu, Xuejuan
Du, Anyu
Tao, Yibing
Huang, Shanshan
Cai, Shufang
Zhou, Mei
Wei, Tao
Zhang, Yanren
Xie, Ling
Wu, Yanqing
Xiao, Jian
Over-activation of TRPM2 ion channel accelerates blood-spinal cord barrier destruction in diabetes combined with spinal cord injury rat
title Over-activation of TRPM2 ion channel accelerates blood-spinal cord barrier destruction in diabetes combined with spinal cord injury rat
title_full Over-activation of TRPM2 ion channel accelerates blood-spinal cord barrier destruction in diabetes combined with spinal cord injury rat
title_fullStr Over-activation of TRPM2 ion channel accelerates blood-spinal cord barrier destruction in diabetes combined with spinal cord injury rat
title_full_unstemmed Over-activation of TRPM2 ion channel accelerates blood-spinal cord barrier destruction in diabetes combined with spinal cord injury rat
title_short Over-activation of TRPM2 ion channel accelerates blood-spinal cord barrier destruction in diabetes combined with spinal cord injury rat
title_sort over-activation of trpm2 ion channel accelerates blood-spinal cord barrier destruction in diabetes combined with spinal cord injury rat
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10197895/
https://www.ncbi.nlm.nih.gov/pubmed/37215981
http://dx.doi.org/10.7150/ijbs.80672
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