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Degradation of TRPML1 in Neurons Reduces Neuron Survival in Transient Global Cerebral Ischemia

Postcardiac arrest syndrome yields poor neurological outcomes, but the mechanisms underlying this condition remain poorly understood. Autophagy plays an important role in neuronal apoptosis induced by ischemia. However, whether autophagy is involved in neuron apoptosis induced by cardiac arrest has...

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Autores principales: Wang, Yang, Jiang, Shao-wei, Liu, Xuan, Niu, Lei, Ge, Xiao-li, Zhang, Jin-cheng, Wang, Hai-rong, Fei, Ai-hua, Gao, Cheng-jin, Pan, Shu-ming
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6312622/
https://www.ncbi.nlm.nih.gov/pubmed/30662583
http://dx.doi.org/10.1155/2018/4612727
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author Wang, Yang
Jiang, Shao-wei
Liu, Xuan
Niu, Lei
Ge, Xiao-li
Zhang, Jin-cheng
Wang, Hai-rong
Fei, Ai-hua
Gao, Cheng-jin
Pan, Shu-ming
author_facet Wang, Yang
Jiang, Shao-wei
Liu, Xuan
Niu, Lei
Ge, Xiao-li
Zhang, Jin-cheng
Wang, Hai-rong
Fei, Ai-hua
Gao, Cheng-jin
Pan, Shu-ming
author_sort Wang, Yang
collection PubMed
description Postcardiac arrest syndrome yields poor neurological outcomes, but the mechanisms underlying this condition remain poorly understood. Autophagy plays an important role in neuronal apoptosis induced by ischemia. However, whether autophagy is involved in neuron apoptosis induced by cardiac arrest has been less studied. This study found that TRPML1 participates in cerebral ischemic reperfusion injury. Primary neurons were isolated and treated with mucolipin synthetic agonist 1 (ML-SA1), as well as infected with the recombinant lentivirus TRPML1 overexpression vector in vitro. ML-SA1 was delivered intracerebroventricularly in transient global ischemia model. Protein expression levels were determined by western blot. Neurological deficit score and the infarct volume were analyzed for the detection of neuronal damage. We found that TRPML1 was significantly downregulated in vivo and in vitro ischemic reperfusion model. We also observed that TRPML1 overexpression or treatment with the ML-SA1 attenuated neuronal death in primary neurons and ameliorated neurological dysfunction in vivo. Our findings suggested that autophagy and apoptosis were activated after transient global ischemia. Administration of ML-SA1 before transient global ischemia ameliorated neurological dysfunction possibly through the promotion of autophagy and the inhibition of apoptosis.
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spelling pubmed-63126222019-01-20 Degradation of TRPML1 in Neurons Reduces Neuron Survival in Transient Global Cerebral Ischemia Wang, Yang Jiang, Shao-wei Liu, Xuan Niu, Lei Ge, Xiao-li Zhang, Jin-cheng Wang, Hai-rong Fei, Ai-hua Gao, Cheng-jin Pan, Shu-ming Oxid Med Cell Longev Research Article Postcardiac arrest syndrome yields poor neurological outcomes, but the mechanisms underlying this condition remain poorly understood. Autophagy plays an important role in neuronal apoptosis induced by ischemia. However, whether autophagy is involved in neuron apoptosis induced by cardiac arrest has been less studied. This study found that TRPML1 participates in cerebral ischemic reperfusion injury. Primary neurons were isolated and treated with mucolipin synthetic agonist 1 (ML-SA1), as well as infected with the recombinant lentivirus TRPML1 overexpression vector in vitro. ML-SA1 was delivered intracerebroventricularly in transient global ischemia model. Protein expression levels were determined by western blot. Neurological deficit score and the infarct volume were analyzed for the detection of neuronal damage. We found that TRPML1 was significantly downregulated in vivo and in vitro ischemic reperfusion model. We also observed that TRPML1 overexpression or treatment with the ML-SA1 attenuated neuronal death in primary neurons and ameliorated neurological dysfunction in vivo. Our findings suggested that autophagy and apoptosis were activated after transient global ischemia. Administration of ML-SA1 before transient global ischemia ameliorated neurological dysfunction possibly through the promotion of autophagy and the inhibition of apoptosis. Hindawi 2018-12-18 /pmc/articles/PMC6312622/ /pubmed/30662583 http://dx.doi.org/10.1155/2018/4612727 Text en Copyright © 2018 Yang Wang et al. http://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
Wang, Yang
Jiang, Shao-wei
Liu, Xuan
Niu, Lei
Ge, Xiao-li
Zhang, Jin-cheng
Wang, Hai-rong
Fei, Ai-hua
Gao, Cheng-jin
Pan, Shu-ming
Degradation of TRPML1 in Neurons Reduces Neuron Survival in Transient Global Cerebral Ischemia
title Degradation of TRPML1 in Neurons Reduces Neuron Survival in Transient Global Cerebral Ischemia
title_full Degradation of TRPML1 in Neurons Reduces Neuron Survival in Transient Global Cerebral Ischemia
title_fullStr Degradation of TRPML1 in Neurons Reduces Neuron Survival in Transient Global Cerebral Ischemia
title_full_unstemmed Degradation of TRPML1 in Neurons Reduces Neuron Survival in Transient Global Cerebral Ischemia
title_short Degradation of TRPML1 in Neurons Reduces Neuron Survival in Transient Global Cerebral Ischemia
title_sort degradation of trpml1 in neurons reduces neuron survival in transient global cerebral ischemia
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6312622/
https://www.ncbi.nlm.nih.gov/pubmed/30662583
http://dx.doi.org/10.1155/2018/4612727
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