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Transcriptome Profiling and Physiological Studies Reveal a Major Role for Aromatic Amino Acids in Mercury Stress Tolerance in Rice Seedlings

Mercury (Hg) is a serious environmental pollution threat to the planet. The accumulation of Hg in plants disrupts many cellular-level functions and inhibits growth and development, but the mechanism is not fully understood. To gain more insight into the cellular response to Hg, we performed a large-...

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Autores principales: Chen, Yun-An, Chi, Wen-Chang, Trinh, Ngoc Nam, Huang, Li-Yao, Chen, Ying-Chih, Cheng, Kai-Teng, Huang, Tsai-Lien, Lin, Chung-Yi, Huang, Hao-Jen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4026224/
https://www.ncbi.nlm.nih.gov/pubmed/24840062
http://dx.doi.org/10.1371/journal.pone.0095163
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author Chen, Yun-An
Chi, Wen-Chang
Trinh, Ngoc Nam
Huang, Li-Yao
Chen, Ying-Chih
Cheng, Kai-Teng
Huang, Tsai-Lien
Lin, Chung-Yi
Huang, Hao-Jen
author_facet Chen, Yun-An
Chi, Wen-Chang
Trinh, Ngoc Nam
Huang, Li-Yao
Chen, Ying-Chih
Cheng, Kai-Teng
Huang, Tsai-Lien
Lin, Chung-Yi
Huang, Hao-Jen
author_sort Chen, Yun-An
collection PubMed
description Mercury (Hg) is a serious environmental pollution threat to the planet. The accumulation of Hg in plants disrupts many cellular-level functions and inhibits growth and development, but the mechanism is not fully understood. To gain more insight into the cellular response to Hg, we performed a large-scale analysis of the rice transcriptome during Hg stress. Genes induced with short-term exposure represented functional categories of cell-wall formation, chemical detoxification, secondary metabolism, signal transduction and abiotic stress response. Moreover, Hg stress upregulated several genes involved in aromatic amino acids (Phe and Trp) and increased the level of free Phe and Trp content. Exogenous application of Phe and Trp to rice roots enhanced tolerance to Hg and effectively reduced Hg-induced production of reactive oxygen species. Hg induced calcium accumulation and activated mitogen-activated protein kinase. Further characterization of the Hg-responsive genes we identified may be helpful for better understanding the mechanisms of Hg in plants.
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spelling pubmed-40262242014-05-21 Transcriptome Profiling and Physiological Studies Reveal a Major Role for Aromatic Amino Acids in Mercury Stress Tolerance in Rice Seedlings Chen, Yun-An Chi, Wen-Chang Trinh, Ngoc Nam Huang, Li-Yao Chen, Ying-Chih Cheng, Kai-Teng Huang, Tsai-Lien Lin, Chung-Yi Huang, Hao-Jen PLoS One Research Article Mercury (Hg) is a serious environmental pollution threat to the planet. The accumulation of Hg in plants disrupts many cellular-level functions and inhibits growth and development, but the mechanism is not fully understood. To gain more insight into the cellular response to Hg, we performed a large-scale analysis of the rice transcriptome during Hg stress. Genes induced with short-term exposure represented functional categories of cell-wall formation, chemical detoxification, secondary metabolism, signal transduction and abiotic stress response. Moreover, Hg stress upregulated several genes involved in aromatic amino acids (Phe and Trp) and increased the level of free Phe and Trp content. Exogenous application of Phe and Trp to rice roots enhanced tolerance to Hg and effectively reduced Hg-induced production of reactive oxygen species. Hg induced calcium accumulation and activated mitogen-activated protein kinase. Further characterization of the Hg-responsive genes we identified may be helpful for better understanding the mechanisms of Hg in plants. Public Library of Science 2014-05-19 /pmc/articles/PMC4026224/ /pubmed/24840062 http://dx.doi.org/10.1371/journal.pone.0095163 Text en © 2014 Chen 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
Chen, Yun-An
Chi, Wen-Chang
Trinh, Ngoc Nam
Huang, Li-Yao
Chen, Ying-Chih
Cheng, Kai-Teng
Huang, Tsai-Lien
Lin, Chung-Yi
Huang, Hao-Jen
Transcriptome Profiling and Physiological Studies Reveal a Major Role for Aromatic Amino Acids in Mercury Stress Tolerance in Rice Seedlings
title Transcriptome Profiling and Physiological Studies Reveal a Major Role for Aromatic Amino Acids in Mercury Stress Tolerance in Rice Seedlings
title_full Transcriptome Profiling and Physiological Studies Reveal a Major Role for Aromatic Amino Acids in Mercury Stress Tolerance in Rice Seedlings
title_fullStr Transcriptome Profiling and Physiological Studies Reveal a Major Role for Aromatic Amino Acids in Mercury Stress Tolerance in Rice Seedlings
title_full_unstemmed Transcriptome Profiling and Physiological Studies Reveal a Major Role for Aromatic Amino Acids in Mercury Stress Tolerance in Rice Seedlings
title_short Transcriptome Profiling and Physiological Studies Reveal a Major Role for Aromatic Amino Acids in Mercury Stress Tolerance in Rice Seedlings
title_sort transcriptome profiling and physiological studies reveal a major role for aromatic amino acids in mercury stress tolerance in rice seedlings
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4026224/
https://www.ncbi.nlm.nih.gov/pubmed/24840062
http://dx.doi.org/10.1371/journal.pone.0095163
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