Cargando…

Chloramphenicol Mitigates Oxidative Stress by Inhibiting Translation of Mitochondrial Complex I in Dopaminergic Neurons of Toxin-Induced Parkinson's Disease Model

Paraquat (PQ), an herbicide considered an environmental contributor to the development of Parkinson's disease (PD), induces dopaminergic neuronal loss through reactive oxygen species (ROS) production and oxidative stress by mitochondrial complex I. Most patients with PQ-induced PD are affected...

Descripción completa

Detalles Bibliográficos
Autores principales: Han, Jeongsu, Kim, Soo Jeong, Ryu, Min Jeong, Jang, Yunseon, Lee, Min Joung, Ju, Xianshu, Lee, Yu Lim, Cui, Jianchen, Shong, Minho, Heo, Jun Young, Kweon, Gi Ryang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6732590/
https://www.ncbi.nlm.nih.gov/pubmed/31534621
http://dx.doi.org/10.1155/2019/4174803
_version_ 1783449841055039488
author Han, Jeongsu
Kim, Soo Jeong
Ryu, Min Jeong
Jang, Yunseon
Lee, Min Joung
Ju, Xianshu
Lee, Yu Lim
Cui, Jianchen
Shong, Minho
Heo, Jun Young
Kweon, Gi Ryang
author_facet Han, Jeongsu
Kim, Soo Jeong
Ryu, Min Jeong
Jang, Yunseon
Lee, Min Joung
Ju, Xianshu
Lee, Yu Lim
Cui, Jianchen
Shong, Minho
Heo, Jun Young
Kweon, Gi Ryang
author_sort Han, Jeongsu
collection PubMed
description Paraquat (PQ), an herbicide considered an environmental contributor to the development of Parkinson's disease (PD), induces dopaminergic neuronal loss through reactive oxygen species (ROS) production and oxidative stress by mitochondrial complex I. Most patients with PQ-induced PD are affected by chronic exposure and require a preventive strategy for modulation of disease progression. To identify drugs that are effective in preventing PD, we screened more than 1000 drugs that are currently used in clinics and in studies employing PQ-treated cells. Of these, chloramphenicol (CP) showed the most powerful inhibitory effect. Pretreatment with CP increased the viability of PQ-treated SN4741 dopaminergic neuronal cells and rat primary cultured dopaminergic neurons compared with control cells treated with PQ only. CP pretreatment also reduced PQ-induced ROS production, implying that mitochondrial complex I is a target of CP. This effect of CP reflected downregulation of the mitochondrial complex I subunit ND1 and diminished PQ recycling, a major mechanism of ROS production, and resulted in the prevention of cell loss. Notably, these effects of CP were not observed in rotenone-pretreated SN4741 cells and Rho-negative cells, in which mitochondrial function is defective. Consistent with these results, CP pretreatment of MPTP-treated PD model mice also ameliorated dopaminergic neuronal cell loss. Our findings indicate that the inhibition of mitochondrial complex I with CP protects dopaminergic neurons and may provide a strategy for preventing neurotoxin-induced PD.
format Online
Article
Text
id pubmed-6732590
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher Hindawi
record_format MEDLINE/PubMed
spelling pubmed-67325902019-09-18 Chloramphenicol Mitigates Oxidative Stress by Inhibiting Translation of Mitochondrial Complex I in Dopaminergic Neurons of Toxin-Induced Parkinson's Disease Model Han, Jeongsu Kim, Soo Jeong Ryu, Min Jeong Jang, Yunseon Lee, Min Joung Ju, Xianshu Lee, Yu Lim Cui, Jianchen Shong, Minho Heo, Jun Young Kweon, Gi Ryang Oxid Med Cell Longev Research Article Paraquat (PQ), an herbicide considered an environmental contributor to the development of Parkinson's disease (PD), induces dopaminergic neuronal loss through reactive oxygen species (ROS) production and oxidative stress by mitochondrial complex I. Most patients with PQ-induced PD are affected by chronic exposure and require a preventive strategy for modulation of disease progression. To identify drugs that are effective in preventing PD, we screened more than 1000 drugs that are currently used in clinics and in studies employing PQ-treated cells. Of these, chloramphenicol (CP) showed the most powerful inhibitory effect. Pretreatment with CP increased the viability of PQ-treated SN4741 dopaminergic neuronal cells and rat primary cultured dopaminergic neurons compared with control cells treated with PQ only. CP pretreatment also reduced PQ-induced ROS production, implying that mitochondrial complex I is a target of CP. This effect of CP reflected downregulation of the mitochondrial complex I subunit ND1 and diminished PQ recycling, a major mechanism of ROS production, and resulted in the prevention of cell loss. Notably, these effects of CP were not observed in rotenone-pretreated SN4741 cells and Rho-negative cells, in which mitochondrial function is defective. Consistent with these results, CP pretreatment of MPTP-treated PD model mice also ameliorated dopaminergic neuronal cell loss. Our findings indicate that the inhibition of mitochondrial complex I with CP protects dopaminergic neurons and may provide a strategy for preventing neurotoxin-induced PD. Hindawi 2019-08-26 /pmc/articles/PMC6732590/ /pubmed/31534621 http://dx.doi.org/10.1155/2019/4174803 Text en Copyright © 2019 Jeongsu Han 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
Han, Jeongsu
Kim, Soo Jeong
Ryu, Min Jeong
Jang, Yunseon
Lee, Min Joung
Ju, Xianshu
Lee, Yu Lim
Cui, Jianchen
Shong, Minho
Heo, Jun Young
Kweon, Gi Ryang
Chloramphenicol Mitigates Oxidative Stress by Inhibiting Translation of Mitochondrial Complex I in Dopaminergic Neurons of Toxin-Induced Parkinson's Disease Model
title Chloramphenicol Mitigates Oxidative Stress by Inhibiting Translation of Mitochondrial Complex I in Dopaminergic Neurons of Toxin-Induced Parkinson's Disease Model
title_full Chloramphenicol Mitigates Oxidative Stress by Inhibiting Translation of Mitochondrial Complex I in Dopaminergic Neurons of Toxin-Induced Parkinson's Disease Model
title_fullStr Chloramphenicol Mitigates Oxidative Stress by Inhibiting Translation of Mitochondrial Complex I in Dopaminergic Neurons of Toxin-Induced Parkinson's Disease Model
title_full_unstemmed Chloramphenicol Mitigates Oxidative Stress by Inhibiting Translation of Mitochondrial Complex I in Dopaminergic Neurons of Toxin-Induced Parkinson's Disease Model
title_short Chloramphenicol Mitigates Oxidative Stress by Inhibiting Translation of Mitochondrial Complex I in Dopaminergic Neurons of Toxin-Induced Parkinson's Disease Model
title_sort chloramphenicol mitigates oxidative stress by inhibiting translation of mitochondrial complex i in dopaminergic neurons of toxin-induced parkinson's disease model
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6732590/
https://www.ncbi.nlm.nih.gov/pubmed/31534621
http://dx.doi.org/10.1155/2019/4174803
work_keys_str_mv AT hanjeongsu chloramphenicolmitigatesoxidativestressbyinhibitingtranslationofmitochondrialcomplexiindopaminergicneuronsoftoxininducedparkinsonsdiseasemodel
AT kimsoojeong chloramphenicolmitigatesoxidativestressbyinhibitingtranslationofmitochondrialcomplexiindopaminergicneuronsoftoxininducedparkinsonsdiseasemodel
AT ryuminjeong chloramphenicolmitigatesoxidativestressbyinhibitingtranslationofmitochondrialcomplexiindopaminergicneuronsoftoxininducedparkinsonsdiseasemodel
AT jangyunseon chloramphenicolmitigatesoxidativestressbyinhibitingtranslationofmitochondrialcomplexiindopaminergicneuronsoftoxininducedparkinsonsdiseasemodel
AT leeminjoung chloramphenicolmitigatesoxidativestressbyinhibitingtranslationofmitochondrialcomplexiindopaminergicneuronsoftoxininducedparkinsonsdiseasemodel
AT juxianshu chloramphenicolmitigatesoxidativestressbyinhibitingtranslationofmitochondrialcomplexiindopaminergicneuronsoftoxininducedparkinsonsdiseasemodel
AT leeyulim chloramphenicolmitigatesoxidativestressbyinhibitingtranslationofmitochondrialcomplexiindopaminergicneuronsoftoxininducedparkinsonsdiseasemodel
AT cuijianchen chloramphenicolmitigatesoxidativestressbyinhibitingtranslationofmitochondrialcomplexiindopaminergicneuronsoftoxininducedparkinsonsdiseasemodel
AT shongminho chloramphenicolmitigatesoxidativestressbyinhibitingtranslationofmitochondrialcomplexiindopaminergicneuronsoftoxininducedparkinsonsdiseasemodel
AT heojunyoung chloramphenicolmitigatesoxidativestressbyinhibitingtranslationofmitochondrialcomplexiindopaminergicneuronsoftoxininducedparkinsonsdiseasemodel
AT kweongiryang chloramphenicolmitigatesoxidativestressbyinhibitingtranslationofmitochondrialcomplexiindopaminergicneuronsoftoxininducedparkinsonsdiseasemodel