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Genome-Wide Identification of Cassava Glyoxalase I Genes and the Potential Function of MeGLYⅠ-13 in Iron Toxicity Tolerance

Glyoxalase I (GLYI) is a key enzyme in the pathway of the glyoxalase system that degrades the toxic substance methylglyoxal, which plays a crucial part in plant growth, development, and stress response. A total of 19 GLYI genes were identified from the cassava genome, which distributed randomly on 1...

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Autores principales: Tang, Fenlian, Li, Ruimei, Zhou, Yangjiao, Wang, Shijia, Zhou, Qin, Ding, Zhongping, Yao, Yuan, Liu, Jiao, Wang, Yajie, Hu, Xinwen, Guo, Jianchun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9104206/
https://www.ncbi.nlm.nih.gov/pubmed/35563603
http://dx.doi.org/10.3390/ijms23095212
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author Tang, Fenlian
Li, Ruimei
Zhou, Yangjiao
Wang, Shijia
Zhou, Qin
Ding, Zhongping
Yao, Yuan
Liu, Jiao
Wang, Yajie
Hu, Xinwen
Guo, Jianchun
author_facet Tang, Fenlian
Li, Ruimei
Zhou, Yangjiao
Wang, Shijia
Zhou, Qin
Ding, Zhongping
Yao, Yuan
Liu, Jiao
Wang, Yajie
Hu, Xinwen
Guo, Jianchun
author_sort Tang, Fenlian
collection PubMed
description Glyoxalase I (GLYI) is a key enzyme in the pathway of the glyoxalase system that degrades the toxic substance methylglyoxal, which plays a crucial part in plant growth, development, and stress response. A total of 19 GLYI genes were identified from the cassava genome, which distributed randomly on 11 chromosomes. These genes were named MeGLYI-1–19 and were systematically characterized. Transcriptome data analysis showed that MeGLYIs gene expression is tissue-specific, and MeGLYI-13 is the dominant gene expressed in young tissues, while MeGLYI-19 is the dominant gene expressed in mature tissues and organs. qRT-PCR analysis showed that MeGLYI-13 is upregulated under 2 h excess iron stress, but downregulated under 6, 12, and 20 h iron stress. Overexpression of MeGLYI-13 enhanced the growth ability of transgenic yeast under iron stress. The root growth of transgenic Arabidopsis seedlings was less inhibited by iron toxicity than that of the wild type (WT). Potted transgenic Arabidopsis blossomed and podded under iron stress, but flowering of the WT was significantly delayed. The GLYI activity in transgenic Arabidopsis was improved under both non-iron stress and iron stress conditions compared to the WT. The SOD activity in transgenic plants was increased under iron stress, while the POD and CAT activity and MDA content were decreased compared to that in the WT. These results provide a basis for the selection of candidate genes for iron toxicity tolerance in cassava, and lay a theoretical foundation for further studies on the functions of these MeGLYI genes.
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spelling pubmed-91042062022-05-14 Genome-Wide Identification of Cassava Glyoxalase I Genes and the Potential Function of MeGLYⅠ-13 in Iron Toxicity Tolerance Tang, Fenlian Li, Ruimei Zhou, Yangjiao Wang, Shijia Zhou, Qin Ding, Zhongping Yao, Yuan Liu, Jiao Wang, Yajie Hu, Xinwen Guo, Jianchun Int J Mol Sci Article Glyoxalase I (GLYI) is a key enzyme in the pathway of the glyoxalase system that degrades the toxic substance methylglyoxal, which plays a crucial part in plant growth, development, and stress response. A total of 19 GLYI genes were identified from the cassava genome, which distributed randomly on 11 chromosomes. These genes were named MeGLYI-1–19 and were systematically characterized. Transcriptome data analysis showed that MeGLYIs gene expression is tissue-specific, and MeGLYI-13 is the dominant gene expressed in young tissues, while MeGLYI-19 is the dominant gene expressed in mature tissues and organs. qRT-PCR analysis showed that MeGLYI-13 is upregulated under 2 h excess iron stress, but downregulated under 6, 12, and 20 h iron stress. Overexpression of MeGLYI-13 enhanced the growth ability of transgenic yeast under iron stress. The root growth of transgenic Arabidopsis seedlings was less inhibited by iron toxicity than that of the wild type (WT). Potted transgenic Arabidopsis blossomed and podded under iron stress, but flowering of the WT was significantly delayed. The GLYI activity in transgenic Arabidopsis was improved under both non-iron stress and iron stress conditions compared to the WT. The SOD activity in transgenic plants was increased under iron stress, while the POD and CAT activity and MDA content were decreased compared to that in the WT. These results provide a basis for the selection of candidate genes for iron toxicity tolerance in cassava, and lay a theoretical foundation for further studies on the functions of these MeGLYI genes. MDPI 2022-05-06 /pmc/articles/PMC9104206/ /pubmed/35563603 http://dx.doi.org/10.3390/ijms23095212 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Tang, Fenlian
Li, Ruimei
Zhou, Yangjiao
Wang, Shijia
Zhou, Qin
Ding, Zhongping
Yao, Yuan
Liu, Jiao
Wang, Yajie
Hu, Xinwen
Guo, Jianchun
Genome-Wide Identification of Cassava Glyoxalase I Genes and the Potential Function of MeGLYⅠ-13 in Iron Toxicity Tolerance
title Genome-Wide Identification of Cassava Glyoxalase I Genes and the Potential Function of MeGLYⅠ-13 in Iron Toxicity Tolerance
title_full Genome-Wide Identification of Cassava Glyoxalase I Genes and the Potential Function of MeGLYⅠ-13 in Iron Toxicity Tolerance
title_fullStr Genome-Wide Identification of Cassava Glyoxalase I Genes and the Potential Function of MeGLYⅠ-13 in Iron Toxicity Tolerance
title_full_unstemmed Genome-Wide Identification of Cassava Glyoxalase I Genes and the Potential Function of MeGLYⅠ-13 in Iron Toxicity Tolerance
title_short Genome-Wide Identification of Cassava Glyoxalase I Genes and the Potential Function of MeGLYⅠ-13 in Iron Toxicity Tolerance
title_sort genome-wide identification of cassava glyoxalase i genes and the potential function of meglyⅰ-13 in iron toxicity tolerance
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9104206/
https://www.ncbi.nlm.nih.gov/pubmed/35563603
http://dx.doi.org/10.3390/ijms23095212
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