Molecular Cloning and Characterization of Three Glucosinolate Transporter (GTR) Genes from Chinese Kale

Chinese kale is a native vegetable in Southern China and the flowering stalk is the most commonly used edible part due to its high glucosinolate content and other nutritional qualities. The GTR protein played important roles in the glucosinolate transport process. In this study, three BocGTR1 genes...

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Main Authors: Ding Jiang, Jianjun Lei, Bihao Cao, Siyuan Wu, Guoju Chen, Changming Chen
Format: Article
Language:English
Published: MDPI AG 2019-03-01
Series:Genes
Subjects:
Online Access:http://www.mdpi.com/2073-4425/10/3/202
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spelling doaj-fe5d4d89a5b34ba7be98a92d614891252020-11-25T00:26:37ZengMDPI AGGenes2073-44252019-03-0110320210.3390/genes10030202genes10030202Molecular Cloning and Characterization of Three Glucosinolate Transporter (GTR) Genes from Chinese KaleDing Jiang0Jianjun Lei1Bihao Cao2Siyuan Wu3Guoju Chen4Changming Chen5Key Laboratory of Biology and Germplasm Enhancement of Horticultural Crops in South China, Ministry of Agriculture, South China Agricultural University, Guangzhou 510642, ChinaKey Laboratory of Biology and Germplasm Enhancement of Horticultural Crops in South China, Ministry of Agriculture, South China Agricultural University, Guangzhou 510642, ChinaKey Laboratory of Biology and Germplasm Enhancement of Horticultural Crops in South China, Ministry of Agriculture, South China Agricultural University, Guangzhou 510642, ChinaKey Laboratory of Biology and Germplasm Enhancement of Horticultural Crops in South China, Ministry of Agriculture, South China Agricultural University, Guangzhou 510642, ChinaKey Laboratory of Biology and Germplasm Enhancement of Horticultural Crops in South China, Ministry of Agriculture, South China Agricultural University, Guangzhou 510642, ChinaKey Laboratory of Biology and Germplasm Enhancement of Horticultural Crops in South China, Ministry of Agriculture, South China Agricultural University, Guangzhou 510642, ChinaChinese kale is a native vegetable in Southern China and the flowering stalk is the most commonly used edible part due to its high glucosinolate content and other nutritional qualities. The GTR protein played important roles in the glucosinolate transport process. In this study, three BocGTR1 genes were cloned from Chinese kale for the first time. Their gene structure, physicochemical properties, signal peptides, transmembrane structures, functional domains, second and third-order protein structures, and phylogenetic relationships were predicted. The expression levels of BocGTR1a and BocGTR1c were much higher than those of BocGTR1b in various tissues, especially in leaves and buds. In addition, the expression patterns of three genes were examined under various abiotic stresses or hormone treatment, including those induced by wounding, heat stress, methyl jasmonate, salicylic acid, salt, and MgCl2 treatment. BocGTR1a and BocGTR1c were strongly induced by wounding and heat stress. The expression of BocGTR1a and BocGTR1c was significantly silenced in plants transformed by RNAi technology. Total glucosinolate content was significantly decreased in mature leaves and increased in roots of RNAi-transformed plants compared to wild-type plants. In addition, we found that BocGTR1a and BocGTR1c may participate in glucosinolate accumulation in different tissues with a selection for specific glucosinolates. These results indicated that BocGTR1a and BocGTR1c may be the key genes involved in the glucosinolate accumulation in different tissues of Chinese kale.http://www.mdpi.com/2073-4425/10/3/202Chinese kaleglucosinolate transportexpression analysisgene function analysis
collection DOAJ
language English
format Article
sources DOAJ
author Ding Jiang
Jianjun Lei
Bihao Cao
Siyuan Wu
Guoju Chen
Changming Chen
spellingShingle Ding Jiang
Jianjun Lei
Bihao Cao
Siyuan Wu
Guoju Chen
Changming Chen
Molecular Cloning and Characterization of Three Glucosinolate Transporter (GTR) Genes from Chinese Kale
Genes
Chinese kale
glucosinolate transport
expression analysis
gene function analysis
author_facet Ding Jiang
Jianjun Lei
Bihao Cao
Siyuan Wu
Guoju Chen
Changming Chen
author_sort Ding Jiang
title Molecular Cloning and Characterization of Three Glucosinolate Transporter (GTR) Genes from Chinese Kale
title_short Molecular Cloning and Characterization of Three Glucosinolate Transporter (GTR) Genes from Chinese Kale
title_full Molecular Cloning and Characterization of Three Glucosinolate Transporter (GTR) Genes from Chinese Kale
title_fullStr Molecular Cloning and Characterization of Three Glucosinolate Transporter (GTR) Genes from Chinese Kale
title_full_unstemmed Molecular Cloning and Characterization of Three Glucosinolate Transporter (GTR) Genes from Chinese Kale
title_sort molecular cloning and characterization of three glucosinolate transporter (gtr) genes from chinese kale
publisher MDPI AG
series Genes
issn 2073-4425
publishDate 2019-03-01
description Chinese kale is a native vegetable in Southern China and the flowering stalk is the most commonly used edible part due to its high glucosinolate content and other nutritional qualities. The GTR protein played important roles in the glucosinolate transport process. In this study, three BocGTR1 genes were cloned from Chinese kale for the first time. Their gene structure, physicochemical properties, signal peptides, transmembrane structures, functional domains, second and third-order protein structures, and phylogenetic relationships were predicted. The expression levels of BocGTR1a and BocGTR1c were much higher than those of BocGTR1b in various tissues, especially in leaves and buds. In addition, the expression patterns of three genes were examined under various abiotic stresses or hormone treatment, including those induced by wounding, heat stress, methyl jasmonate, salicylic acid, salt, and MgCl2 treatment. BocGTR1a and BocGTR1c were strongly induced by wounding and heat stress. The expression of BocGTR1a and BocGTR1c was significantly silenced in plants transformed by RNAi technology. Total glucosinolate content was significantly decreased in mature leaves and increased in roots of RNAi-transformed plants compared to wild-type plants. In addition, we found that BocGTR1a and BocGTR1c may participate in glucosinolate accumulation in different tissues with a selection for specific glucosinolates. These results indicated that BocGTR1a and BocGTR1c may be the key genes involved in the glucosinolate accumulation in different tissues of Chinese kale.
topic Chinese kale
glucosinolate transport
expression analysis
gene function analysis
url http://www.mdpi.com/2073-4425/10/3/202
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