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Comparative Transcriptome Analyses between a Spontaneous Late-Ripening Sweet Orange Mutant and Its Wild Type Suggest the Functions of ABA, Sucrose and JA during Citrus Fruit Ripening

Identifieur interne : 000B62 ( Main/Exploration ); précédent : 000B61; suivant : 000B63

Comparative Transcriptome Analyses between a Spontaneous Late-Ripening Sweet Orange Mutant and Its Wild Type Suggest the Functions of ABA, Sucrose and JA during Citrus Fruit Ripening

Auteurs : Ya-Jian Zhang [République populaire de Chine] ; Xing-Jian Wang [République populaire de Chine] ; Ju-Xun Wu [République populaire de Chine] ; Shan-Yan Chen [République populaire de Chine] ; Hong Chen [République populaire de Chine] ; Li-Jun Chai [République populaire de Chine] ; Hua-Lin Yi [République populaire de Chine]

Source :

RBID : PMC:4281182

English descriptors

Abstract

A spontaneous late-ripening mutant of ‘Jincheng’ (C. sinensis L. Osbeck) sweet orange exhibited a delay of fruit pigmentation and harvesting. In this work, we studied the processes of orange fruit ripening through the comparative analysis between the Jincheng mutant and its wild type. This study revealed that the fruit quality began to differ on 166th days after anthesis. At this stage, fruits were subjected to transcriptome analysis by RNA sequencing. 13,412 differentially expressed unigenes (DEGs) were found. Of these unigenes, 75.8% were down-regulated in the wild type, suggesting that the transcription level of wild type was lower than that of the mutant during this stage. These DEGs were mainly clustered into five pathways: metabolic pathways, plant-pathogen interaction, spliceosome, biosynthesis of plant hormones and biosynthesis of phenylpropanoids. Therefore, the expression profiles of the genes that are involved in abscisic acid, sucrose, and jasmonic acid metabolism and signal transduction pathways were analyzed during the six fruit ripening stages. The results revealed the regulation mechanism of sweet orange fruit ripening metabolism in the following four aspects: First, the more mature orange fruits were, the lower the transcription levels were. Second, the expression level of PME boosted with the maturity of the citrus fruit. Therefore, the expression level of PME might represent the degree of the orange fruit ripeness. Third, the interaction of PP2C, PYR/PYL, and SnRK2 was peculiar to the orange fruit ripening process. Fourth, abscisic acid, sucrose, and jasmonic acid all took part in orange fruit ripening process and might interact with each other. These findings provide an insight into the intricate process of sweet orange fruit ripening.


Url:
DOI: 10.1371/journal.pone.0116056
PubMed: 25551568
PubMed Central: 4281182


Affiliations:


Links toward previous steps (curation, corpus...)


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<term>Abscisic Acid (biosynthesis)</term>
<term>Base Sequence</term>
<term>Citrus sinensis (genetics)</term>
<term>Citrus sinensis (growth & development)</term>
<term>Cyclopentanes (metabolism)</term>
<term>Gene Expression Profiling</term>
<term>Gene Expression Regulation, Plant</term>
<term>Oxylipins (metabolism)</term>
<term>Phosphoprotein Phosphatases (biosynthesis)</term>
<term>Phosphoprotein Phosphatases (genetics)</term>
<term>Plant Proteins (genetics)</term>
<term>Protein-Serine-Threonine Kinases (biosynthesis)</term>
<term>Protein-Serine-Threonine Kinases (genetics)</term>
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<term>Protein-Serine-Threonine Kinases</term>
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<term>Citrus sinensis</term>
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<term>Cyclopentanes</term>
<term>Oxylipins</term>
<term>Sucrose</term>
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<div type="abstract" xml:lang="en">
<p>A spontaneous late-ripening mutant of ‘Jincheng’ (
<italic>C. sinensis</italic>
L. Osbeck) sweet orange exhibited a delay of fruit pigmentation and harvesting. In this work, we studied the processes of orange fruit ripening through the comparative analysis between the Jincheng mutant and its wild type. This study revealed that the fruit quality began to differ on 166
<sup>th</sup>
days after anthesis. At this stage, fruits were subjected to transcriptome analysis by RNA sequencing. 13,412 differentially expressed unigenes (DEGs) were found. Of these unigenes, 75.8% were down-regulated in the wild type, suggesting that the transcription level of wild type was lower than that of the mutant during this stage. These DEGs were mainly clustered into five pathways: metabolic pathways, plant-pathogen interaction, spliceosome, biosynthesis of plant hormones and biosynthesis of phenylpropanoids. Therefore, the expression profiles of the genes that are involved in abscisic acid, sucrose, and jasmonic acid metabolism and signal transduction pathways were analyzed during the six fruit ripening stages. The results revealed the regulation mechanism of sweet orange fruit ripening metabolism in the following four aspects: First, the more mature orange fruits were, the lower the transcription levels were. Second, the expression level of
<italic>PME</italic>
boosted with the maturity of the citrus fruit. Therefore, the expression level of
<italic>PME</italic>
might represent the degree of the orange fruit ripeness. Third, the interaction of PP2C, PYR/PYL, and SnRK2 was peculiar to the orange fruit ripening process. Fourth, abscisic acid, sucrose, and jasmonic acid all took part in orange fruit ripening process and might interact with each other. These findings provide an insight into the intricate process of sweet orange fruit ripening.</p>
</div>
</front>
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<name sortKey="Karppinen, K" uniqKey="Karppinen K">K Karppinen</name>
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<name sortKey="Nevala, T" uniqKey="Nevala T">T Nevala</name>
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<author>
<name sortKey="Sipari, N" uniqKey="Sipari N">N Sipari</name>
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<author>
<name sortKey="Suokas, M" uniqKey="Suokas M">M Suokas</name>
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<name sortKey="Zeevaart, Ja" uniqKey="Zeevaart J">JA Zeevaart</name>
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<analytic>
<author>
<name sortKey="Ren, J" uniqKey="Ren J">J Ren</name>
</author>
<author>
<name sortKey="Sun, L" uniqKey="Sun L">L Sun</name>
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<name sortKey="Wu, J" uniqKey="Wu J">J Wu</name>
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</author>
<author>
<name sortKey="Wang, C" uniqKey="Wang C">C Wang</name>
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</analytic>
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<analytic>
<author>
<name sortKey="Falchi, R" uniqKey="Falchi R">R Falchi</name>
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<author>
<name sortKey="De Marco, F" uniqKey="De Marco F">F De Marco</name>
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</author>
<author>
<name sortKey="Pfeiffer, A" uniqKey="Pfeiffer A">A Pfeiffer</name>
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</analytic>
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<name sortKey="Wang, Gy" uniqKey="Wang G">GY Wang</name>
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<author>
<name sortKey="Xu, F" uniqKey="Xu F">F Xu</name>
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<name sortKey="Wu, Qs" uniqKey="Wu Q">QS Wu</name>
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</analytic>
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<author>
<name sortKey="Ruiz, Kb" uniqKey="Ruiz K">KB Ruiz</name>
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<author>
<name sortKey="Trainotti, L" uniqKey="Trainotti L">L Trainotti</name>
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</div1>
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</TEI>
<affiliations>
<list>
<country>
<li>République populaire de Chine</li>
</country>
</list>
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<country name="République populaire de Chine">
<noRegion>
<name sortKey="Zhang, Ya Jian" sort="Zhang, Ya Jian" uniqKey="Zhang Y" first="Ya-Jian" last="Zhang">Ya-Jian Zhang</name>
</noRegion>
<name sortKey="Chai, Li Jun" sort="Chai, Li Jun" uniqKey="Chai L" first="Li-Jun" last="Chai">Li-Jun Chai</name>
<name sortKey="Chai, Li Jun" sort="Chai, Li Jun" uniqKey="Chai L" first="Li-Jun" last="Chai">Li-Jun Chai</name>
<name sortKey="Chen, Hong" sort="Chen, Hong" uniqKey="Chen H" first="Hong" last="Chen">Hong Chen</name>
<name sortKey="Chen, Shan Yan" sort="Chen, Shan Yan" uniqKey="Chen S" first="Shan-Yan" last="Chen">Shan-Yan Chen</name>
<name sortKey="Chen, Shan Yan" sort="Chen, Shan Yan" uniqKey="Chen S" first="Shan-Yan" last="Chen">Shan-Yan Chen</name>
<name sortKey="Chen, Shan Yan" sort="Chen, Shan Yan" uniqKey="Chen S" first="Shan-Yan" last="Chen">Shan-Yan Chen</name>
<name sortKey="Wang, Xing Jian" sort="Wang, Xing Jian" uniqKey="Wang X" first="Xing-Jian" last="Wang">Xing-Jian Wang</name>
<name sortKey="Wang, Xing Jian" sort="Wang, Xing Jian" uniqKey="Wang X" first="Xing-Jian" last="Wang">Xing-Jian Wang</name>
<name sortKey="Wu, Ju Xun" sort="Wu, Ju Xun" uniqKey="Wu J" first="Ju-Xun" last="Wu">Ju-Xun Wu</name>
<name sortKey="Wu, Ju Xun" sort="Wu, Ju Xun" uniqKey="Wu J" first="Ju-Xun" last="Wu">Ju-Xun Wu</name>
<name sortKey="Yi, Hua Lin" sort="Yi, Hua Lin" uniqKey="Yi H" first="Hua-Lin" last="Yi">Hua-Lin Yi</name>
<name sortKey="Yi, Hua Lin" sort="Yi, Hua Lin" uniqKey="Yi H" first="Hua-Lin" last="Yi">Hua-Lin Yi</name>
<name sortKey="Zhang, Ya Jian" sort="Zhang, Ya Jian" uniqKey="Zhang Y" first="Ya-Jian" last="Zhang">Ya-Jian Zhang</name>
</country>
</tree>
</affiliations>
</record>

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