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Quantitative Phosphoproteomic and Physiological Analyses Provide Insights into the Formation of the Variegated Leaf in Catalpa fargesii

Variegated plants are valuable materials for investigating leaf color regulated mechanisms. To unveil the role of posttranslational modification in the variegated phenotype, we conducted global quantitative phosphoproteomic analysis on different leaf color sectors of Maiyuanjinqiu and the correspond...

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Autores principales: Wang, Nan, Zhu, Tianqing, Lu, Nan, Wang, Zhi, Yang, Guijuan, Qu, Guanzheng, Kong, Lisheng, Zhang, Shougong, Ma, Wenjun, Wang, Junhui
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6514904/
https://www.ncbi.nlm.nih.gov/pubmed/30999580
http://dx.doi.org/10.3390/ijms20081895
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author Wang, Nan
Zhu, Tianqing
Lu, Nan
Wang, Zhi
Yang, Guijuan
Qu, Guanzheng
Kong, Lisheng
Zhang, Shougong
Ma, Wenjun
Wang, Junhui
author_facet Wang, Nan
Zhu, Tianqing
Lu, Nan
Wang, Zhi
Yang, Guijuan
Qu, Guanzheng
Kong, Lisheng
Zhang, Shougong
Ma, Wenjun
Wang, Junhui
author_sort Wang, Nan
collection PubMed
description Variegated plants are valuable materials for investigating leaf color regulated mechanisms. To unveil the role of posttranslational modification in the variegated phenotype, we conducted global quantitative phosphoproteomic analysis on different leaf color sectors of Maiyuanjinqiu and the corresponding of Catalpa fargesii using Ti(4+)-IMAC phosphopeptide enrichment. A total of 3778 phosphorylated sites assigned to 1646 phosphoproteins were identified, and 3221 in 1434 proteins were quantified. Differential phosphoproteins (above 1.5 or below 1/1.5) in various leaf color sectors were selected for functional enrichment analyses. Gene ontology (GO) enrichment revealed that processes of photosynthesis, regulation of the generation of precursor metabolites, response to stress, homeostasis, amino acid metabolism, transport–related processes, and most of the energy metabolisms might contribute to leaf color. KEGG pathway enrichment analysis was performed based on differential phosphoproteins (DPs) in different organelles. The result showed that most enriched pathways were located in the chloroplasts and cytosol. The phosphorylation levels of glycometabolism enzymes might greatly affect leaf variegation. Measurements of fluorescence parameters and enzyme activities confirmed that protein phosphorylation could affect plant physiology by regulating enzyme activity. These results provide new clues for further study the formation mechanisms of naturally variegated phenotype.
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spelling pubmed-65149042019-05-30 Quantitative Phosphoproteomic and Physiological Analyses Provide Insights into the Formation of the Variegated Leaf in Catalpa fargesii Wang, Nan Zhu, Tianqing Lu, Nan Wang, Zhi Yang, Guijuan Qu, Guanzheng Kong, Lisheng Zhang, Shougong Ma, Wenjun Wang, Junhui Int J Mol Sci Article Variegated plants are valuable materials for investigating leaf color regulated mechanisms. To unveil the role of posttranslational modification in the variegated phenotype, we conducted global quantitative phosphoproteomic analysis on different leaf color sectors of Maiyuanjinqiu and the corresponding of Catalpa fargesii using Ti(4+)-IMAC phosphopeptide enrichment. A total of 3778 phosphorylated sites assigned to 1646 phosphoproteins were identified, and 3221 in 1434 proteins were quantified. Differential phosphoproteins (above 1.5 or below 1/1.5) in various leaf color sectors were selected for functional enrichment analyses. Gene ontology (GO) enrichment revealed that processes of photosynthesis, regulation of the generation of precursor metabolites, response to stress, homeostasis, amino acid metabolism, transport–related processes, and most of the energy metabolisms might contribute to leaf color. KEGG pathway enrichment analysis was performed based on differential phosphoproteins (DPs) in different organelles. The result showed that most enriched pathways were located in the chloroplasts and cytosol. The phosphorylation levels of glycometabolism enzymes might greatly affect leaf variegation. Measurements of fluorescence parameters and enzyme activities confirmed that protein phosphorylation could affect plant physiology by regulating enzyme activity. These results provide new clues for further study the formation mechanisms of naturally variegated phenotype. MDPI 2019-04-17 /pmc/articles/PMC6514904/ /pubmed/30999580 http://dx.doi.org/10.3390/ijms20081895 Text en © 2019 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Wang, Nan
Zhu, Tianqing
Lu, Nan
Wang, Zhi
Yang, Guijuan
Qu, Guanzheng
Kong, Lisheng
Zhang, Shougong
Ma, Wenjun
Wang, Junhui
Quantitative Phosphoproteomic and Physiological Analyses Provide Insights into the Formation of the Variegated Leaf in Catalpa fargesii
title Quantitative Phosphoproteomic and Physiological Analyses Provide Insights into the Formation of the Variegated Leaf in Catalpa fargesii
title_full Quantitative Phosphoproteomic and Physiological Analyses Provide Insights into the Formation of the Variegated Leaf in Catalpa fargesii
title_fullStr Quantitative Phosphoproteomic and Physiological Analyses Provide Insights into the Formation of the Variegated Leaf in Catalpa fargesii
title_full_unstemmed Quantitative Phosphoproteomic and Physiological Analyses Provide Insights into the Formation of the Variegated Leaf in Catalpa fargesii
title_short Quantitative Phosphoproteomic and Physiological Analyses Provide Insights into the Formation of the Variegated Leaf in Catalpa fargesii
title_sort quantitative phosphoproteomic and physiological analyses provide insights into the formation of the variegated leaf in catalpa fargesii
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6514904/
https://www.ncbi.nlm.nih.gov/pubmed/30999580
http://dx.doi.org/10.3390/ijms20081895
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