Cargando…

B355252, A Novel Small Molecule, Confers Neuroprotection Against Cobalt Chloride Toxicity In Mouse Hippocampal Cells Through Altering Mitochondrial Dynamics And Limiting Autophagy Induction

Cerebral hypoxia as often occurs in cases of stroke, hemorrhage, or other traumatic brain injuries, is one of the leading causes of death worldwide and a main driver of disabilities in the elderly. Using a chemical mimetic of hypoxia, cobalt chloride (CoCl(2)), we tested the ability of a novel small...

Descripción completa

Detalles Bibliográficos
Autores principales: Chimeh, Uchechukwu, Zimmerman, Mary Ann, Gilyazova, Nailya, Li, P. Andy
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Ivyspring International Publisher 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6158673/
https://www.ncbi.nlm.nih.gov/pubmed/30275767
http://dx.doi.org/10.7150/ijms.24702
_version_ 1783358464188219392
author Chimeh, Uchechukwu
Zimmerman, Mary Ann
Gilyazova, Nailya
Li, P. Andy
author_facet Chimeh, Uchechukwu
Zimmerman, Mary Ann
Gilyazova, Nailya
Li, P. Andy
author_sort Chimeh, Uchechukwu
collection PubMed
description Cerebral hypoxia as often occurs in cases of stroke, hemorrhage, or other traumatic brain injuries, is one of the leading causes of death worldwide and a main driver of disabilities in the elderly. Using a chemical mimetic of hypoxia, cobalt chloride (CoCl(2)), we tested the ability of a novel small molecule, 4-chloro-N-(naphthalen-1-ylmethyl)-5-(3-(piperazin-1-yl)phenoxy)thiophene-2-sulfonamide (B355252), to alleviate CoCl(2)-induced damage in mouse hippocampal HT22 cells. A dose-dependent decrease in cell viability was observed during CoCl(2) treatment along with increases in mitochondrial membrane potential and generation of reactive oxygen species (ROS). B355252 conferred protection against these changes. We further found that mitochondrial dynamics, the balance between mitochondrial fusion and fission, were perturbed by CoCl(2) treatment. Mitochondrial fusion, which was assessed by measuring the expression of proteins optic atrophy protein 1 (OPA1) and mitofusin 2 (Mfn2), declined due to CoCl(2) exposure, but B355252 addition was able to elevate Mfn2 expression while OPA1 expression was unchanged. Mitochondrial fission, measured by phosphorylated dynamin-related protein 1 (p-DRP1) and fission protein 1 (FIS1) expression, also decreased following CoCl(2) exposure, and was stabilized by B355252 addition. Finally, autophagy was assessed by measuring the conversion of cytosolic microtubule-associated protein 1A/1B-light chain three-I (LC3-I) to autophagosome-bound microtubule-associated protein 1A/1B-light chain three-II (LC3-II) and was found to be increased by CoCl(2). B355252 addition significantly reduced autophagy induction. Taken together, our results indicate B355252 has therapeutic potential to reduce the damaging effects caused by CoCl(2) and should be further evaluated for applications in cerebral ischemia therapy.
format Online
Article
Text
id pubmed-6158673
institution National Center for Biotechnology Information
language English
publishDate 2018
publisher Ivyspring International Publisher
record_format MEDLINE/PubMed
spelling pubmed-61586732018-10-01 B355252, A Novel Small Molecule, Confers Neuroprotection Against Cobalt Chloride Toxicity In Mouse Hippocampal Cells Through Altering Mitochondrial Dynamics And Limiting Autophagy Induction Chimeh, Uchechukwu Zimmerman, Mary Ann Gilyazova, Nailya Li, P. Andy Int J Med Sci Research Paper Cerebral hypoxia as often occurs in cases of stroke, hemorrhage, or other traumatic brain injuries, is one of the leading causes of death worldwide and a main driver of disabilities in the elderly. Using a chemical mimetic of hypoxia, cobalt chloride (CoCl(2)), we tested the ability of a novel small molecule, 4-chloro-N-(naphthalen-1-ylmethyl)-5-(3-(piperazin-1-yl)phenoxy)thiophene-2-sulfonamide (B355252), to alleviate CoCl(2)-induced damage in mouse hippocampal HT22 cells. A dose-dependent decrease in cell viability was observed during CoCl(2) treatment along with increases in mitochondrial membrane potential and generation of reactive oxygen species (ROS). B355252 conferred protection against these changes. We further found that mitochondrial dynamics, the balance between mitochondrial fusion and fission, were perturbed by CoCl(2) treatment. Mitochondrial fusion, which was assessed by measuring the expression of proteins optic atrophy protein 1 (OPA1) and mitofusin 2 (Mfn2), declined due to CoCl(2) exposure, but B355252 addition was able to elevate Mfn2 expression while OPA1 expression was unchanged. Mitochondrial fission, measured by phosphorylated dynamin-related protein 1 (p-DRP1) and fission protein 1 (FIS1) expression, also decreased following CoCl(2) exposure, and was stabilized by B355252 addition. Finally, autophagy was assessed by measuring the conversion of cytosolic microtubule-associated protein 1A/1B-light chain three-I (LC3-I) to autophagosome-bound microtubule-associated protein 1A/1B-light chain three-II (LC3-II) and was found to be increased by CoCl(2). B355252 addition significantly reduced autophagy induction. Taken together, our results indicate B355252 has therapeutic potential to reduce the damaging effects caused by CoCl(2) and should be further evaluated for applications in cerebral ischemia therapy. Ivyspring International Publisher 2018-09-07 /pmc/articles/PMC6158673/ /pubmed/30275767 http://dx.doi.org/10.7150/ijms.24702 Text en © Ivyspring International Publisher This is an open access article distributed under the terms of the Creative Commons Attribution (CC BY-NC) license (https://creativecommons.org/licenses/by-nc/4.0/). See http://ivyspring.com/terms for full terms and conditions.
spellingShingle Research Paper
Chimeh, Uchechukwu
Zimmerman, Mary Ann
Gilyazova, Nailya
Li, P. Andy
B355252, A Novel Small Molecule, Confers Neuroprotection Against Cobalt Chloride Toxicity In Mouse Hippocampal Cells Through Altering Mitochondrial Dynamics And Limiting Autophagy Induction
title B355252, A Novel Small Molecule, Confers Neuroprotection Against Cobalt Chloride Toxicity In Mouse Hippocampal Cells Through Altering Mitochondrial Dynamics And Limiting Autophagy Induction
title_full B355252, A Novel Small Molecule, Confers Neuroprotection Against Cobalt Chloride Toxicity In Mouse Hippocampal Cells Through Altering Mitochondrial Dynamics And Limiting Autophagy Induction
title_fullStr B355252, A Novel Small Molecule, Confers Neuroprotection Against Cobalt Chloride Toxicity In Mouse Hippocampal Cells Through Altering Mitochondrial Dynamics And Limiting Autophagy Induction
title_full_unstemmed B355252, A Novel Small Molecule, Confers Neuroprotection Against Cobalt Chloride Toxicity In Mouse Hippocampal Cells Through Altering Mitochondrial Dynamics And Limiting Autophagy Induction
title_short B355252, A Novel Small Molecule, Confers Neuroprotection Against Cobalt Chloride Toxicity In Mouse Hippocampal Cells Through Altering Mitochondrial Dynamics And Limiting Autophagy Induction
title_sort b355252, a novel small molecule, confers neuroprotection against cobalt chloride toxicity in mouse hippocampal cells through altering mitochondrial dynamics and limiting autophagy induction
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6158673/
https://www.ncbi.nlm.nih.gov/pubmed/30275767
http://dx.doi.org/10.7150/ijms.24702
work_keys_str_mv AT chimehuchechukwu b355252anovelsmallmoleculeconfersneuroprotectionagainstcobaltchloridetoxicityinmousehippocampalcellsthroughalteringmitochondrialdynamicsandlimitingautophagyinduction
AT zimmermanmaryann b355252anovelsmallmoleculeconfersneuroprotectionagainstcobaltchloridetoxicityinmousehippocampalcellsthroughalteringmitochondrialdynamicsandlimitingautophagyinduction
AT gilyazovanailya b355252anovelsmallmoleculeconfersneuroprotectionagainstcobaltchloridetoxicityinmousehippocampalcellsthroughalteringmitochondrialdynamicsandlimitingautophagyinduction
AT lipandy b355252anovelsmallmoleculeconfersneuroprotectionagainstcobaltchloridetoxicityinmousehippocampalcellsthroughalteringmitochondrialdynamicsandlimitingautophagyinduction