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Transcriptomic and Physiological Analysis Reveal That α-Linolenic Acid Biosynthesis Responds to Early Chilling Tolerance in Pumpkin Rootstock Varieties

Climate changes especially chilling stress affects cucurbit crops during winter seasonal production. Grafting to pumpkin rootstocks is widely used to improve the vigor of cucurbits, especially cucumber (Cucumis sativus L.) plants, in the face of chilling stress. In our study, multi-disciplinary aspe...

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Autores principales: Liu, Wenqian, Zhang, Ruoyan, Xiang, Chenggang, Zhang, Ruiyun, Wang, Qing, Wang, Tao, Li, Xiaojun, Lu, Xiaohong, Gao, Shunli, Liu, Zixi, Liu, Mengshuang, Gao, Lihong, Zhang, Wenna
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8104029/
https://www.ncbi.nlm.nih.gov/pubmed/33968120
http://dx.doi.org/10.3389/fpls.2021.669565
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author Liu, Wenqian
Zhang, Ruoyan
Xiang, Chenggang
Zhang, Ruiyun
Wang, Qing
Wang, Tao
Li, Xiaojun
Lu, Xiaohong
Gao, Shunli
Liu, Zixi
Liu, Mengshuang
Gao, Lihong
Zhang, Wenna
author_facet Liu, Wenqian
Zhang, Ruoyan
Xiang, Chenggang
Zhang, Ruiyun
Wang, Qing
Wang, Tao
Li, Xiaojun
Lu, Xiaohong
Gao, Shunli
Liu, Zixi
Liu, Mengshuang
Gao, Lihong
Zhang, Wenna
author_sort Liu, Wenqian
collection PubMed
description Climate changes especially chilling stress affects cucurbit crops during winter seasonal production. Grafting to pumpkin rootstocks is widely used to improve the vigor of cucurbits, especially cucumber (Cucumis sativus L.) plants, in the face of chilling stress. In our study, multi-disciplinary aspect approaches were used to investigate growth changes of pumpkin under chilling stress. Firstly, the morphological and physiological characteristics of 14 pumpkin (Cucurbita moschata) varieties following different periods of chilling stress was analyzed by using physiological means. Mathematical results of principal component analysis (PCA) with chlorophyll-a, chlorophyll-b, carotenoid contents, chilling injury index and relative electrolyte permeability indicated that relative electrolyte permeability as the primary judgment index was best associated with the comparison of chilling tolerance in pumpkin rootstock varieties. Then, transcriptomic and DCMU (Diuron) application and chlorophyll fluorescence examination analysis of pumpkin leaves revealed that 390 Cucurbita moschata differentially expressed genes (CmoDEGs) that affect photosynthesis were upregulated in leaves. 127 CmoDEGs both in leaves and roots were enriched for genes involved in unsaturated fatty acid metabolism, suggesting that plasma membrane lipids are involved in chilling perception. The results of increased composition of unsaturated fatty acid in leaves and qRT-PCR analysis of relative mRNA abundance confirmed that α-linolenic acid biosynthesis was responding to pumpkin chilling tolerance. The integration of physiological, mathematical bioinformatical and biological analysis results contributes to our understanding of the molecular mechanisms underlying chilling tolerance and its improvement in cucumber grafted on pumpkin rootstocks. It provided an important theoretical basis and reference for further understanding on the impact of climate change on plant physiological changes.
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spelling pubmed-81040292021-05-08 Transcriptomic and Physiological Analysis Reveal That α-Linolenic Acid Biosynthesis Responds to Early Chilling Tolerance in Pumpkin Rootstock Varieties Liu, Wenqian Zhang, Ruoyan Xiang, Chenggang Zhang, Ruiyun Wang, Qing Wang, Tao Li, Xiaojun Lu, Xiaohong Gao, Shunli Liu, Zixi Liu, Mengshuang Gao, Lihong Zhang, Wenna Front Plant Sci Plant Science Climate changes especially chilling stress affects cucurbit crops during winter seasonal production. Grafting to pumpkin rootstocks is widely used to improve the vigor of cucurbits, especially cucumber (Cucumis sativus L.) plants, in the face of chilling stress. In our study, multi-disciplinary aspect approaches were used to investigate growth changes of pumpkin under chilling stress. Firstly, the morphological and physiological characteristics of 14 pumpkin (Cucurbita moschata) varieties following different periods of chilling stress was analyzed by using physiological means. Mathematical results of principal component analysis (PCA) with chlorophyll-a, chlorophyll-b, carotenoid contents, chilling injury index and relative electrolyte permeability indicated that relative electrolyte permeability as the primary judgment index was best associated with the comparison of chilling tolerance in pumpkin rootstock varieties. Then, transcriptomic and DCMU (Diuron) application and chlorophyll fluorescence examination analysis of pumpkin leaves revealed that 390 Cucurbita moschata differentially expressed genes (CmoDEGs) that affect photosynthesis were upregulated in leaves. 127 CmoDEGs both in leaves and roots were enriched for genes involved in unsaturated fatty acid metabolism, suggesting that plasma membrane lipids are involved in chilling perception. The results of increased composition of unsaturated fatty acid in leaves and qRT-PCR analysis of relative mRNA abundance confirmed that α-linolenic acid biosynthesis was responding to pumpkin chilling tolerance. The integration of physiological, mathematical bioinformatical and biological analysis results contributes to our understanding of the molecular mechanisms underlying chilling tolerance and its improvement in cucumber grafted on pumpkin rootstocks. It provided an important theoretical basis and reference for further understanding on the impact of climate change on plant physiological changes. Frontiers Media S.A. 2021-04-23 /pmc/articles/PMC8104029/ /pubmed/33968120 http://dx.doi.org/10.3389/fpls.2021.669565 Text en Copyright © 2021 Liu, Zhang, Xiang, Zhang, Wang, Wang, Li, Lu, Gao, Liu, Liu, Gao and Zhang. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Plant Science
Liu, Wenqian
Zhang, Ruoyan
Xiang, Chenggang
Zhang, Ruiyun
Wang, Qing
Wang, Tao
Li, Xiaojun
Lu, Xiaohong
Gao, Shunli
Liu, Zixi
Liu, Mengshuang
Gao, Lihong
Zhang, Wenna
Transcriptomic and Physiological Analysis Reveal That α-Linolenic Acid Biosynthesis Responds to Early Chilling Tolerance in Pumpkin Rootstock Varieties
title Transcriptomic and Physiological Analysis Reveal That α-Linolenic Acid Biosynthesis Responds to Early Chilling Tolerance in Pumpkin Rootstock Varieties
title_full Transcriptomic and Physiological Analysis Reveal That α-Linolenic Acid Biosynthesis Responds to Early Chilling Tolerance in Pumpkin Rootstock Varieties
title_fullStr Transcriptomic and Physiological Analysis Reveal That α-Linolenic Acid Biosynthesis Responds to Early Chilling Tolerance in Pumpkin Rootstock Varieties
title_full_unstemmed Transcriptomic and Physiological Analysis Reveal That α-Linolenic Acid Biosynthesis Responds to Early Chilling Tolerance in Pumpkin Rootstock Varieties
title_short Transcriptomic and Physiological Analysis Reveal That α-Linolenic Acid Biosynthesis Responds to Early Chilling Tolerance in Pumpkin Rootstock Varieties
title_sort transcriptomic and physiological analysis reveal that α-linolenic acid biosynthesis responds to early chilling tolerance in pumpkin rootstock varieties
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8104029/
https://www.ncbi.nlm.nih.gov/pubmed/33968120
http://dx.doi.org/10.3389/fpls.2021.669565
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