Transcriptomic Analysis of Salicylic Acid Promoting Seed Germination of Melon under Salt Stress

This study investigated how salicylic acid (SA) mediates the response of melon (<i>Cucumis melo</i>) seeds to salt stress using physiological and transcriptomic methods. The effects of SA on the antioxidant enzymes, osmoregulatory substances, and transcriptome of melon seeds under salt s...

وصف كامل

التفاصيل البيبلوغرافية
الحاوية / القاعدة:Horticulturae
المؤلفون الرئيسيون: Miao Yan, Jiancai Mao, Ting Wu, Tao Xiong, Quansheng Huang, Haibo Wu, Guozhi Hu
التنسيق: مقال
اللغة:الإنجليزية
منشور في: MDPI AG 2023-03-01
الموضوعات:
الوصول للمادة أونلاين:https://www.mdpi.com/2311-7524/9/3/375
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author Miao Yan
Jiancai Mao
Ting Wu
Tao Xiong
Quansheng Huang
Haibo Wu
Guozhi Hu
author_facet Miao Yan
Jiancai Mao
Ting Wu
Tao Xiong
Quansheng Huang
Haibo Wu
Guozhi Hu
author_sort Miao Yan
collection DOAJ
container_title Horticulturae
description This study investigated how salicylic acid (SA) mediates the response of melon (<i>Cucumis melo</i>) seeds to salt stress using physiological and transcriptomic methods. The effects of SA on the antioxidant enzymes, osmoregulatory substances, and transcriptome of melon seeds under salt stress were investigated using sodium chloride (NaCl, 100 mmol·L<sup>−1</sup>) as the stress stimulant and SA + NaCl (0.25 mmol·L<sup>−1</sup> + 100 mmol·L<sup>−1</sup>) as the alleviation treatment. The results showed that SA positively influences salt tolerance by increasing the activity of superoxide dismutase activity (SOD) and catalase activity (CAT) while decreasing proline content (Pro). Differentially expressed genes (DEGs) were identified by transcriptome data analysis, of which 2958 were up-regulated, and 2157 were down-regulated. These genes were mainly involved in the mitogen-activated protein kinase (MAPK) signaling pathway and plant hormone signal transduction, lipid metabolism (linoleic and α-linolenic fatty acid metabolism), biosynthesis of secondary metabolites (phenylpropanoid pathway and flavonoid biosynthesis), and related pathways. Further analysis revealed that SA might alleviate salt stress by initiating a series of signaling pathways under salt stress, participating in lignin biosynthesis to improve cell wall stability, and positively regulating lipoxygenase (LOX) genes. These results provide valuable information and new strategies for future salt resistance cultivation and high melon yield.
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spelling doaj-art-cbfd1b535c6a4e1a98527cf2bcd4130d2025-08-20T01:06:39ZengMDPI AGHorticulturae2311-75242023-03-019337510.3390/horticulturae9030375Transcriptomic Analysis of Salicylic Acid Promoting Seed Germination of Melon under Salt StressMiao Yan0Jiancai Mao1Ting Wu2Tao Xiong3Quansheng Huang4Haibo Wu5Guozhi Hu6Hami Melon Research Center, Xinjiang Academy of Agricultural Sciences, Urumqi 830091, ChinaHami Melon Research Center, Xinjiang Academy of Agricultural Sciences, Urumqi 830091, ChinaHami Melon Research Center, Xinjiang Academy of Agricultural Sciences, Urumqi 830091, ChinaHami Melon Research Center, Xinjiang Academy of Agricultural Sciences, Urumqi 830091, ChinaResearch Institute of Nuclear Technology and Biotechnology, Xinjiang Academy of Agricultural Sciences, Urumqi 830091, ChinaHami Melon Research Center, Xinjiang Academy of Agricultural Sciences, Urumqi 830091, ChinaHami Melon Research Center, Xinjiang Academy of Agricultural Sciences, Urumqi 830091, ChinaThis study investigated how salicylic acid (SA) mediates the response of melon (<i>Cucumis melo</i>) seeds to salt stress using physiological and transcriptomic methods. The effects of SA on the antioxidant enzymes, osmoregulatory substances, and transcriptome of melon seeds under salt stress were investigated using sodium chloride (NaCl, 100 mmol·L<sup>−1</sup>) as the stress stimulant and SA + NaCl (0.25 mmol·L<sup>−1</sup> + 100 mmol·L<sup>−1</sup>) as the alleviation treatment. The results showed that SA positively influences salt tolerance by increasing the activity of superoxide dismutase activity (SOD) and catalase activity (CAT) while decreasing proline content (Pro). Differentially expressed genes (DEGs) were identified by transcriptome data analysis, of which 2958 were up-regulated, and 2157 were down-regulated. These genes were mainly involved in the mitogen-activated protein kinase (MAPK) signaling pathway and plant hormone signal transduction, lipid metabolism (linoleic and α-linolenic fatty acid metabolism), biosynthesis of secondary metabolites (phenylpropanoid pathway and flavonoid biosynthesis), and related pathways. Further analysis revealed that SA might alleviate salt stress by initiating a series of signaling pathways under salt stress, participating in lignin biosynthesis to improve cell wall stability, and positively regulating lipoxygenase (LOX) genes. These results provide valuable information and new strategies for future salt resistance cultivation and high melon yield.https://www.mdpi.com/2311-7524/9/3/375<i>Cucumis melo</i>salicylic acidsalt stresstranscriptomedifferential genes
spellingShingle Miao Yan
Jiancai Mao
Ting Wu
Tao Xiong
Quansheng Huang
Haibo Wu
Guozhi Hu
Transcriptomic Analysis of Salicylic Acid Promoting Seed Germination of Melon under Salt Stress
<i>Cucumis melo</i>
salicylic acid
salt stress
transcriptome
differential genes
title Transcriptomic Analysis of Salicylic Acid Promoting Seed Germination of Melon under Salt Stress
title_full Transcriptomic Analysis of Salicylic Acid Promoting Seed Germination of Melon under Salt Stress
title_fullStr Transcriptomic Analysis of Salicylic Acid Promoting Seed Germination of Melon under Salt Stress
title_full_unstemmed Transcriptomic Analysis of Salicylic Acid Promoting Seed Germination of Melon under Salt Stress
title_short Transcriptomic Analysis of Salicylic Acid Promoting Seed Germination of Melon under Salt Stress
title_sort transcriptomic analysis of salicylic acid promoting seed germination of melon under salt stress
topic <i>Cucumis melo</i>
salicylic acid
salt stress
transcriptome
differential genes
url https://www.mdpi.com/2311-7524/9/3/375
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AT taoxiong transcriptomicanalysisofsalicylicacidpromotingseedgerminationofmelonundersaltstress
AT quanshenghuang transcriptomicanalysisofsalicylicacidpromotingseedgerminationofmelonundersaltstress
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