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Salicylic acid carboxyl glucosyltransferase UGT87E7 regulates disease resistance in Camellia sinensis

Plant immune response following pathogenic infection is regulated by plant hormones, and salicylic acid (SA) and its sugar conjugates play important roles in establishing basal resistance. Here, the important pathogen Pseudopestalotiopsis camelliae-sinensis (Pcs) was isolated from tea gray blight, o...

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Autores principales: Hu, Yunqing, Zhang, Mengting, Lu, Mengqian, Wu, Yi, Jing, Tingting, Zhao, Mingyue, Zhao, Yifan, Feng, Yingying, Wang, Jingming, Gao, Ting, Zhou, Zixiang, Wu, Bin, Jiang, Hao, Wan, Xiaochun, Schwab, Wilfried, Song, Chuankui
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8896648/
https://www.ncbi.nlm.nih.gov/pubmed/34893910
http://dx.doi.org/10.1093/plphys/kiab569
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author Hu, Yunqing
Zhang, Mengting
Lu, Mengqian
Wu, Yi
Jing, Tingting
Zhao, Mingyue
Zhao, Yifan
Feng, Yingying
Wang, Jingming
Gao, Ting
Zhou, Zixiang
Wu, Bin
Jiang, Hao
Wan, Xiaochun
Schwab, Wilfried
Song, Chuankui
author_facet Hu, Yunqing
Zhang, Mengting
Lu, Mengqian
Wu, Yi
Jing, Tingting
Zhao, Mingyue
Zhao, Yifan
Feng, Yingying
Wang, Jingming
Gao, Ting
Zhou, Zixiang
Wu, Bin
Jiang, Hao
Wan, Xiaochun
Schwab, Wilfried
Song, Chuankui
author_sort Hu, Yunqing
collection PubMed
description Plant immune response following pathogenic infection is regulated by plant hormones, and salicylic acid (SA) and its sugar conjugates play important roles in establishing basal resistance. Here, the important pathogen Pseudopestalotiopsis camelliae-sinensis (Pcs) was isolated from tea gray blight, one of the most destructive diseases in tea plantations. Transcriptomic analysis led to the discovery of the putative Camellia sinensis UDP-glucosyltransferase CsUGT87E7 whose expression was significantly induced by SA application and Pcs infection. Recombinant CsUGT87E7 glucosylates SA with a K(m) value of 12 µM to form SA glucose ester (SGE). Downregulation reduced the accumulation of SGE, and CsUGT87E7-silenced tea plants exhibited greater susceptibility to pathogen infection than control plants. Similarly, CsUGT87E7-silenced tea leaves accumulated significantly less SA after infection and showed reduced expression of pathogenesis-related genes. These results suggest that CsUGT87E7 is an SA carboxyl glucosyltransferase that plays a positive role in plant disease resistance by modulating SA homeostasis through a mechanism distinct from that described in Arabidopsis (Arabidopsis thaliana). This study provides insight into the mechanisms of SA metabolism and highlights the role of SGE in the modulation of plant disease resistance.
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spelling pubmed-88966482022-03-11 Salicylic acid carboxyl glucosyltransferase UGT87E7 regulates disease resistance in Camellia sinensis Hu, Yunqing Zhang, Mengting Lu, Mengqian Wu, Yi Jing, Tingting Zhao, Mingyue Zhao, Yifan Feng, Yingying Wang, Jingming Gao, Ting Zhou, Zixiang Wu, Bin Jiang, Hao Wan, Xiaochun Schwab, Wilfried Song, Chuankui Plant Physiol Research Articles Plant immune response following pathogenic infection is regulated by plant hormones, and salicylic acid (SA) and its sugar conjugates play important roles in establishing basal resistance. Here, the important pathogen Pseudopestalotiopsis camelliae-sinensis (Pcs) was isolated from tea gray blight, one of the most destructive diseases in tea plantations. Transcriptomic analysis led to the discovery of the putative Camellia sinensis UDP-glucosyltransferase CsUGT87E7 whose expression was significantly induced by SA application and Pcs infection. Recombinant CsUGT87E7 glucosylates SA with a K(m) value of 12 µM to form SA glucose ester (SGE). Downregulation reduced the accumulation of SGE, and CsUGT87E7-silenced tea plants exhibited greater susceptibility to pathogen infection than control plants. Similarly, CsUGT87E7-silenced tea leaves accumulated significantly less SA after infection and showed reduced expression of pathogenesis-related genes. These results suggest that CsUGT87E7 is an SA carboxyl glucosyltransferase that plays a positive role in plant disease resistance by modulating SA homeostasis through a mechanism distinct from that described in Arabidopsis (Arabidopsis thaliana). This study provides insight into the mechanisms of SA metabolism and highlights the role of SGE in the modulation of plant disease resistance. Oxford University Press 2021-12-06 /pmc/articles/PMC8896648/ /pubmed/34893910 http://dx.doi.org/10.1093/plphys/kiab569 Text en © The Author(s) 2022. Published by Oxford University Press on behalf of American Society of Plant Biologists. https://creativecommons.org/licenses/by/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Hu, Yunqing
Zhang, Mengting
Lu, Mengqian
Wu, Yi
Jing, Tingting
Zhao, Mingyue
Zhao, Yifan
Feng, Yingying
Wang, Jingming
Gao, Ting
Zhou, Zixiang
Wu, Bin
Jiang, Hao
Wan, Xiaochun
Schwab, Wilfried
Song, Chuankui
Salicylic acid carboxyl glucosyltransferase UGT87E7 regulates disease resistance in Camellia sinensis
title Salicylic acid carboxyl glucosyltransferase UGT87E7 regulates disease resistance in Camellia sinensis
title_full Salicylic acid carboxyl glucosyltransferase UGT87E7 regulates disease resistance in Camellia sinensis
title_fullStr Salicylic acid carboxyl glucosyltransferase UGT87E7 regulates disease resistance in Camellia sinensis
title_full_unstemmed Salicylic acid carboxyl glucosyltransferase UGT87E7 regulates disease resistance in Camellia sinensis
title_short Salicylic acid carboxyl glucosyltransferase UGT87E7 regulates disease resistance in Camellia sinensis
title_sort salicylic acid carboxyl glucosyltransferase ugt87e7 regulates disease resistance in camellia sinensis
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8896648/
https://www.ncbi.nlm.nih.gov/pubmed/34893910
http://dx.doi.org/10.1093/plphys/kiab569
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