Cargando…

SA inhibits complex III activity to generate reactive oxygen species and thereby induces GA overproduction in Ganoderma lucidum

Ganoderma lucidum has high commercial value because it produces many active compounds, such as ganoderic acids (GAs). Salicylic acid (SA) was previously reported to induce the biosynthesis of GA in G. lucidum. In this study, we found that SA induces GA biosynthesis by increasing ROS production, and...

Descripción completa

Detalles Bibliográficos
Autores principales: Liu, Rui, Cao, Pengfei, Ren, Ang, Wang, Shengli, Yang, Tao, Zhu, Ting, Shi, Liang, Zhu, Jing, Jiang, Ai-Liang, Zhao, Ming-Wen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5953243/
https://www.ncbi.nlm.nih.gov/pubmed/29631100
http://dx.doi.org/10.1016/j.redox.2018.03.018
_version_ 1783323331676602368
author Liu, Rui
Cao, Pengfei
Ren, Ang
Wang, Shengli
Yang, Tao
Zhu, Ting
Shi, Liang
Zhu, Jing
Jiang, Ai-Liang
Zhao, Ming-Wen
author_facet Liu, Rui
Cao, Pengfei
Ren, Ang
Wang, Shengli
Yang, Tao
Zhu, Ting
Shi, Liang
Zhu, Jing
Jiang, Ai-Liang
Zhao, Ming-Wen
author_sort Liu, Rui
collection PubMed
description Ganoderma lucidum has high commercial value because it produces many active compounds, such as ganoderic acids (GAs). Salicylic acid (SA) was previously reported to induce the biosynthesis of GA in G. lucidum. In this study, we found that SA induces GA biosynthesis by increasing ROS production, and further research found that NADPH oxidase-silenced strains exhibited a partial reduction in the response to SA, resulting in the induction of increased ROS production. Furthermore, the localization of ROS shows that mitochondria are sources of ROS production in response to SA treatment. An additional analysis focused on the relationship between SA-induced ROS production and mitochondrial functions, and the results showed that inhibitors of mitochondrial complexes I and II exert approximately 40–50% superimposed inhibitory effects on the respiration rate and H(2)O(2) content when co-administered with SA. However, no obvious superimposed inhibition effects were observed in the sample co-treated with mitochondrial complex III inhibitor and SA, implying that the inhibitor of mitochondrial complex III and SA might act on the same site in mitochondria. Additional experiments revealed that complex III activity was decreased 51%, 62% and 75% after treatment with 100, 200, and 400 µM SA, respectively. Our results highlight the finding that SA inhibits mitochondrial complex III activity to increase ROS generation. In addition, inhibition of mitochondrial complex III caused ROS accumulation, which plays an essential role in SA-mediated GA biosynthesis in G. lucidum. This conclusion was also demonstrated in complex III-silenced strains. To the best of our knowledge, this study provides the first demonstration that SA inhibits complex III activity to increase the ROS levels and thereby regulate secondary metabolite biosynthesis.
format Online
Article
Text
id pubmed-5953243
institution National Center for Biotechnology Information
language English
publishDate 2018
publisher Elsevier
record_format MEDLINE/PubMed
spelling pubmed-59532432018-05-16 SA inhibits complex III activity to generate reactive oxygen species and thereby induces GA overproduction in Ganoderma lucidum Liu, Rui Cao, Pengfei Ren, Ang Wang, Shengli Yang, Tao Zhu, Ting Shi, Liang Zhu, Jing Jiang, Ai-Liang Zhao, Ming-Wen Redox Biol Research Paper Ganoderma lucidum has high commercial value because it produces many active compounds, such as ganoderic acids (GAs). Salicylic acid (SA) was previously reported to induce the biosynthesis of GA in G. lucidum. In this study, we found that SA induces GA biosynthesis by increasing ROS production, and further research found that NADPH oxidase-silenced strains exhibited a partial reduction in the response to SA, resulting in the induction of increased ROS production. Furthermore, the localization of ROS shows that mitochondria are sources of ROS production in response to SA treatment. An additional analysis focused on the relationship between SA-induced ROS production and mitochondrial functions, and the results showed that inhibitors of mitochondrial complexes I and II exert approximately 40–50% superimposed inhibitory effects on the respiration rate and H(2)O(2) content when co-administered with SA. However, no obvious superimposed inhibition effects were observed in the sample co-treated with mitochondrial complex III inhibitor and SA, implying that the inhibitor of mitochondrial complex III and SA might act on the same site in mitochondria. Additional experiments revealed that complex III activity was decreased 51%, 62% and 75% after treatment with 100, 200, and 400 µM SA, respectively. Our results highlight the finding that SA inhibits mitochondrial complex III activity to increase ROS generation. In addition, inhibition of mitochondrial complex III caused ROS accumulation, which plays an essential role in SA-mediated GA biosynthesis in G. lucidum. This conclusion was also demonstrated in complex III-silenced strains. To the best of our knowledge, this study provides the first demonstration that SA inhibits complex III activity to increase the ROS levels and thereby regulate secondary metabolite biosynthesis. Elsevier 2018-03-31 /pmc/articles/PMC5953243/ /pubmed/29631100 http://dx.doi.org/10.1016/j.redox.2018.03.018 Text en © 2018 The Authors http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Research Paper
Liu, Rui
Cao, Pengfei
Ren, Ang
Wang, Shengli
Yang, Tao
Zhu, Ting
Shi, Liang
Zhu, Jing
Jiang, Ai-Liang
Zhao, Ming-Wen
SA inhibits complex III activity to generate reactive oxygen species and thereby induces GA overproduction in Ganoderma lucidum
title SA inhibits complex III activity to generate reactive oxygen species and thereby induces GA overproduction in Ganoderma lucidum
title_full SA inhibits complex III activity to generate reactive oxygen species and thereby induces GA overproduction in Ganoderma lucidum
title_fullStr SA inhibits complex III activity to generate reactive oxygen species and thereby induces GA overproduction in Ganoderma lucidum
title_full_unstemmed SA inhibits complex III activity to generate reactive oxygen species and thereby induces GA overproduction in Ganoderma lucidum
title_short SA inhibits complex III activity to generate reactive oxygen species and thereby induces GA overproduction in Ganoderma lucidum
title_sort sa inhibits complex iii activity to generate reactive oxygen species and thereby induces ga overproduction in ganoderma lucidum
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5953243/
https://www.ncbi.nlm.nih.gov/pubmed/29631100
http://dx.doi.org/10.1016/j.redox.2018.03.018
work_keys_str_mv AT liurui sainhibitscomplexiiiactivitytogeneratereactiveoxygenspeciesandtherebyinducesgaoverproductioninganodermalucidum
AT caopengfei sainhibitscomplexiiiactivitytogeneratereactiveoxygenspeciesandtherebyinducesgaoverproductioninganodermalucidum
AT renang sainhibitscomplexiiiactivitytogeneratereactiveoxygenspeciesandtherebyinducesgaoverproductioninganodermalucidum
AT wangshengli sainhibitscomplexiiiactivitytogeneratereactiveoxygenspeciesandtherebyinducesgaoverproductioninganodermalucidum
AT yangtao sainhibitscomplexiiiactivitytogeneratereactiveoxygenspeciesandtherebyinducesgaoverproductioninganodermalucidum
AT zhuting sainhibitscomplexiiiactivitytogeneratereactiveoxygenspeciesandtherebyinducesgaoverproductioninganodermalucidum
AT shiliang sainhibitscomplexiiiactivitytogeneratereactiveoxygenspeciesandtherebyinducesgaoverproductioninganodermalucidum
AT zhujing sainhibitscomplexiiiactivitytogeneratereactiveoxygenspeciesandtherebyinducesgaoverproductioninganodermalucidum
AT jiangailiang sainhibitscomplexiiiactivitytogeneratereactiveoxygenspeciesandtherebyinducesgaoverproductioninganodermalucidum
AT zhaomingwen sainhibitscomplexiiiactivitytogeneratereactiveoxygenspeciesandtherebyinducesgaoverproductioninganodermalucidum