Cargando…

Alternative Electron Transports Participate in the Maintenance of Violaxanthin De-Epoxidase Activity of Ulva sp. under Low Irradiance

The xanthophyll cycle (Xc), which involves violaxanthin de-epoxidase (VDE) and the zeaxanthin epoxidase (ZEP), is one of the most rapid and efficient responses of plant and algae to high irradiance. High light intensity can activate VDE to convert violaxanthin (Vx) to zeaxanthin (Zx) via antheraxant...

Descripción completa

Detalles Bibliográficos
Autores principales: Xie, Xiujun, Gu, Wenhui, Gao, Shan, Lu, Shan, Li, Jian, Pan, Guanghua, Wang, Guangce, Shen, Songdong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3826755/
https://www.ncbi.nlm.nih.gov/pubmed/24250793
http://dx.doi.org/10.1371/journal.pone.0078211
_version_ 1782290955911561216
author Xie, Xiujun
Gu, Wenhui
Gao, Shan
Lu, Shan
Li, Jian
Pan, Guanghua
Wang, Guangce
Shen, Songdong
author_facet Xie, Xiujun
Gu, Wenhui
Gao, Shan
Lu, Shan
Li, Jian
Pan, Guanghua
Wang, Guangce
Shen, Songdong
author_sort Xie, Xiujun
collection PubMed
description The xanthophyll cycle (Xc), which involves violaxanthin de-epoxidase (VDE) and the zeaxanthin epoxidase (ZEP), is one of the most rapid and efficient responses of plant and algae to high irradiance. High light intensity can activate VDE to convert violaxanthin (Vx) to zeaxanthin (Zx) via antheraxanthin (Ax). However, it remains unclear whether VDE remains active under low light or dark conditions when there is no significant accumulation of Ax and Zx, and if so, how the ΔpH required for activation of VDE is built. In this study, we used salicylaldoxime (SA) to inhibit ZEP activity in the intertidal macro-algae Ulva sp. (Ulvales, Chlorophyta) and then characterized VDE under low light and dark conditions with various metabolic inhibitors. With inhibition of ZEP by SA, VDE remained active under low light and dark conditions, as indicated by large accumulations of Ax and Zx at the expense of Vx. When PSII-mediated linear electron transport systems were completely inhibited by SA and DCMU, alternative electron transport systems (i.e., cyclic electron transport and chlororespiration) could maintain VDE activity. Furthermore, accumulations of Ax and Zx decreased significantly when SA, DCMU, or DBMIB together with an inhibitor of chlororespiration (i.e., propyl gallate (PG)) were applied to Ulva sp. This result suggests that chlororespiration not only participates in the build-up of the necessary ΔpH, but that it also possibly influences VDE activity indirectly by diminishing the oxygen level in the chloroplast.
format Online
Article
Text
id pubmed-3826755
institution National Center for Biotechnology Information
language English
publishDate 2013
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-38267552013-11-18 Alternative Electron Transports Participate in the Maintenance of Violaxanthin De-Epoxidase Activity of Ulva sp. under Low Irradiance Xie, Xiujun Gu, Wenhui Gao, Shan Lu, Shan Li, Jian Pan, Guanghua Wang, Guangce Shen, Songdong PLoS One Research Article The xanthophyll cycle (Xc), which involves violaxanthin de-epoxidase (VDE) and the zeaxanthin epoxidase (ZEP), is one of the most rapid and efficient responses of plant and algae to high irradiance. High light intensity can activate VDE to convert violaxanthin (Vx) to zeaxanthin (Zx) via antheraxanthin (Ax). However, it remains unclear whether VDE remains active under low light or dark conditions when there is no significant accumulation of Ax and Zx, and if so, how the ΔpH required for activation of VDE is built. In this study, we used salicylaldoxime (SA) to inhibit ZEP activity in the intertidal macro-algae Ulva sp. (Ulvales, Chlorophyta) and then characterized VDE under low light and dark conditions with various metabolic inhibitors. With inhibition of ZEP by SA, VDE remained active under low light and dark conditions, as indicated by large accumulations of Ax and Zx at the expense of Vx. When PSII-mediated linear electron transport systems were completely inhibited by SA and DCMU, alternative electron transport systems (i.e., cyclic electron transport and chlororespiration) could maintain VDE activity. Furthermore, accumulations of Ax and Zx decreased significantly when SA, DCMU, or DBMIB together with an inhibitor of chlororespiration (i.e., propyl gallate (PG)) were applied to Ulva sp. This result suggests that chlororespiration not only participates in the build-up of the necessary ΔpH, but that it also possibly influences VDE activity indirectly by diminishing the oxygen level in the chloroplast. Public Library of Science 2013-11-08 /pmc/articles/PMC3826755/ /pubmed/24250793 http://dx.doi.org/10.1371/journal.pone.0078211 Text en © 2013 Xie et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Xie, Xiujun
Gu, Wenhui
Gao, Shan
Lu, Shan
Li, Jian
Pan, Guanghua
Wang, Guangce
Shen, Songdong
Alternative Electron Transports Participate in the Maintenance of Violaxanthin De-Epoxidase Activity of Ulva sp. under Low Irradiance
title Alternative Electron Transports Participate in the Maintenance of Violaxanthin De-Epoxidase Activity of Ulva sp. under Low Irradiance
title_full Alternative Electron Transports Participate in the Maintenance of Violaxanthin De-Epoxidase Activity of Ulva sp. under Low Irradiance
title_fullStr Alternative Electron Transports Participate in the Maintenance of Violaxanthin De-Epoxidase Activity of Ulva sp. under Low Irradiance
title_full_unstemmed Alternative Electron Transports Participate in the Maintenance of Violaxanthin De-Epoxidase Activity of Ulva sp. under Low Irradiance
title_short Alternative Electron Transports Participate in the Maintenance of Violaxanthin De-Epoxidase Activity of Ulva sp. under Low Irradiance
title_sort alternative electron transports participate in the maintenance of violaxanthin de-epoxidase activity of ulva sp. under low irradiance
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3826755/
https://www.ncbi.nlm.nih.gov/pubmed/24250793
http://dx.doi.org/10.1371/journal.pone.0078211
work_keys_str_mv AT xiexiujun alternativeelectrontransportsparticipateinthemaintenanceofviolaxanthindeepoxidaseactivityofulvaspunderlowirradiance
AT guwenhui alternativeelectrontransportsparticipateinthemaintenanceofviolaxanthindeepoxidaseactivityofulvaspunderlowirradiance
AT gaoshan alternativeelectrontransportsparticipateinthemaintenanceofviolaxanthindeepoxidaseactivityofulvaspunderlowirradiance
AT lushan alternativeelectrontransportsparticipateinthemaintenanceofviolaxanthindeepoxidaseactivityofulvaspunderlowirradiance
AT lijian alternativeelectrontransportsparticipateinthemaintenanceofviolaxanthindeepoxidaseactivityofulvaspunderlowirradiance
AT panguanghua alternativeelectrontransportsparticipateinthemaintenanceofviolaxanthindeepoxidaseactivityofulvaspunderlowirradiance
AT wangguangce alternativeelectrontransportsparticipateinthemaintenanceofviolaxanthindeepoxidaseactivityofulvaspunderlowirradiance
AT shensongdong alternativeelectrontransportsparticipateinthemaintenanceofviolaxanthindeepoxidaseactivityofulvaspunderlowirradiance