Comparative Proteomic Analysis by iTRAQ Reveals that Plastid Pigment Metabolism Contributes to Leaf Color Changes in Tobacco (Nicotiana tabacum) during Curing
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M. Adil | I. Shamsi | Zhangmin Xiang | B. Cai | Shengjiang Wu | Yushuang Guo | Yonggao Tu | Shafaque Sehar | Degang Zhao
[1] Dong Li,et al. Elevated CO2 delayed the chlorophyll degradation and anthocyanin accumulation in postharvest strawberry fruit. , 2019, Food chemistry.
[2] Hongbo Zhao,et al. Carotenoid Accumulation and Its Contribution to Flower Coloration of Osmanthus fragrans , 2018, Front. Plant Sci..
[3] Ya-zhou Yang,et al. Transcriptome Profiling Reveals Transcriptional Regulation by DNA Methyltransferase Inhibitor 5-Aza-2′-Deoxycytidine Enhancing Red Pigmentation in Bagged “Granny Smith” Apples (Malus domestica) , 2018, International journal of molecular sciences.
[4] Hongfei Fu,et al. Candidate Genes for Yellow Leaf Color in Common Wheat (Triticum aestivum L.) and Major Related Metabolic Pathways according to Transcriptome Profiling , 2018, International journal of molecular sciences.
[5] Yongping Cai,et al. iTRAQ-Based Identification of Proteins Related to Lignin Synthesis in the Pear Pollinated with Pollen from Different Varieties , 2018, Molecules.
[6] Li Zhao,et al. Biochemical and transcriptomic analyses of drought stress responses of LY1306 tobacco strain , 2017, Scientific Reports.
[7] S. Yao,et al. Effects of blue LED light irradiation on pigment metabolism of ethephon-degreened mandarin fruit. , 2017 .
[8] Hong-yu Ma,et al. iTRAQ-based proteomics monitors the withering dynamics in postharvest leaves of tea plant (Camellia sinensis) , 2017, Molecular Genetics and Genomics.
[9] Leiming Sun,et al. iTRAQ-based quantitative proteomic analysis reveals alterations in the metabolism of Actinidia arguta , 2017, Scientific Reports.
[10] Xudong Zhu,et al. Genome-wide identification and characterization of genes involved in carotenoid metabolic in three stages of grapevine fruit development , 2017, Scientific Reports.
[11] N. Akram,et al. Ascorbic Acid-A Potential Oxidant Scavenger and Its Role in Plant Development and Abiotic Stress Tolerance , 2017, Front. Plant Sci..
[12] Kaimian Li,et al. Proteomic analysis of injured storage roots in cassava (Manihot esculenta Crantz) under postharvest physiological deterioration , 2017, PloS one.
[13] Xin Lu,et al. Comprehensive investigation of tobacco leaves during natural early senescence via multi-platform metabolomics analyses , 2016, Scientific Reports.
[14] S. Jockusch,et al. Chlorophyll‐Derived Yellow Phyllobilins of Higher Plants as Medium‐Responsive Chiral Photoswitches , 2016, Angewandte Chemie.
[15] G. Agrawal,et al. Coupling of gel-based 2-DE and 1-DE shotgun proteomics approaches to dig deep into the leaf senescence proteome of Glycine max. , 2016, Journal of proteomics.
[16] A. Das,et al. A Role for TIC55 as a Hydroxylase of Phyllobilins, the Products of Chlorophyll Breakdown during Plant Senescence[OPEN] , 2016, Plant Cell.
[17] Jianke Li,et al. Phenotypic, histological and proteomic analyses reveal multiple differences associated with chloroplast development in yellow and variegated variants from Camellia sinensis , 2016, Scientific Reports.
[18] Zhonghu He,et al. Carotenoids in Staple Cereals: Metabolism, Regulation, and Genetic Manipulation , 2016, Front. Plant Sci..
[19] Walter Sanseverino,et al. A high-quality carrot genome assembly provides new insights into carotenoid accumulation and asterid genome evolution , 2016, Nature Genetics.
[20] Katja Karppinen,et al. Carotenoid metabolism during bilberry (Vaccinium myrtillus L.) fruit development under different light conditions is regulated by biosynthesis and degradation , 2016, BMC Plant Biology.
[21] Sixue Chen,et al. Proteomic Analysis Reveals the Leaf Color Regulation Mechanism in Chimera Hosta “Gold Standard” Leaves , 2016, International journal of molecular sciences.
[22] B. Kräutler. Breakdown of Chlorophyll in Higher Plants—Phyllobilins as Abundant, Yet Hardly Visible Signs of Ripening, Senescence, and Cell Death , 2016, Angewandte Chemie.
[23] Li Li,et al. Carotenoid metabolism and regulation in horticultural crops , 2015, Horticulture Research.
[24] P. Beyer,et al. Tissue-Specific Apocarotenoid Glycosylation Contributes to Carotenoid Homeostasis in Arabidopsis Leaves1 , 2015, Plant Physiology.
[25] G. King,et al. Disruption of a CAROTENOID CLEAVAGE DIOXYGENASE 4 gene converts flower colour from white to yellow in Brassica species. , 2015, The New phytologist.
[26] Mathias Wilhelm,et al. A Scalable Approach for Protein False Discovery Rate Estimation in Large Proteomic Data Sets , 2015, Molecular & Cellular Proteomics.
[27] S. Datta,et al. Down-regulation of lipoxygenase gene reduces degradation of carotenoids of golden rice during storage , 2015, Planta.
[28] S. Dong,et al. The role of nitrogen in leaf senescence of summer maize and analysis of underlying mechanisms using comparative proteomics. , 2015, Plant science : an international journal of experimental plant biology.
[29] C. Zhang,et al. iTRAQ-based quantitative proteomics analysis of Brassica napus leaves reveals pathways associated with chlorophyll deficiency. , 2015, Journal of proteomics.
[30] Shouwen Chen,et al. Decreased tobacco-specific nitrosamines by microbial treatment with Bacillus amyloliquefaciens DA9 during the air-curing process of burley tobacco. , 2014, Journal of agricultural and food chemistry.
[31] Lu Wang,et al. Biochemical and transcriptome analyses of a novel chlorophyll-deficient chlorina tea plant cultivar , 2014, BMC Plant Biology.
[32] Qiang Feng,et al. IQuant: An automated pipeline for quantitative proteomics based upon isobaric tags , 2014, Proteomics.
[33] M. Sagi,et al. Impairment in Sulfite Reductase Leads to Early Leaf Senescence in Tomato Plants1[W][OPEN] , 2014, Plant Physiology.
[34] M. Peitsch,et al. The tobacco genome sequence and its comparison with those of tomato and potato , 2014, Nature Communications.
[35] Zhangmin Xiang,et al. Analysis of volatile flavour components in flue-cured tobacco by headspace solid-phase microextraction combined with GC×GC-TOFMS , 2014 .
[36] Yongfeng Guo. Towards systems biological understanding of leaf senescence , 2013, Plant Molecular Biology.
[37] D. Lewis,et al. Relationship between changes in colour and pigment content during spathe regreening of Zantedeschia ‘Best Gold’ , 2012 .
[38] V. Baskaran,et al. Comparative study on the levels of carotenoids lutein, zeaxanthin and β-carotene in Indian spices of nutritional and medicinal importance , 2010 .
[39] Simone Moser,et al. Hypermodified fluorescent chlorophyll catabolites: source of blue luminescence in senescent leaves. , 2010, Angewandte Chemie.
[40] Heather M Whitney,et al. Structural colour and iridescence in plants: the poorly studied relations of pigment colour. , 2010, Annals of botany.
[41] R. Berger,et al. Generation of norisoprenoid flavors from carotenoids by fungal peroxidases. , 2009, Journal of agricultural and food chemistry.
[42] Andreas Holzinger,et al. Fluorescent chlorophyll catabolites in bananas light up blue halos of cell death , 2009, Proceedings of the National Academy of Sciences.
[43] T. Hubbard,et al. Accurate and sensitive peptide identification with Mascot Percolator. , 2009, Journal of proteome research.
[44] Cornelius S. Barry,et al. Amino Acid Substitutions in Homologs of the STAY-GREEN Protein Are Responsible for the green-flesh and chlorophyll retainer Mutations of Tomato and Pepper1[W][OA] , 2008, Plant Physiology.
[45] J. Rose,et al. Sample extraction techniques for enhanced proteomic analysis of plant tissues , 2006, Nature Protocols.
[46] D. Zamir,et al. A Chromoplast-Specific Carotenoid Biosynthesis Pathway Is Revealed by Cloning of the Tomato white-flower Locus[W] , 2006, The Plant Cell Online.
[47] S. Hörtensteiner. Chlorophyll degradation during senescence. , 2006, Annual review of plant biology.
[48] M. Erhardt,et al. RNR1, a 3′–5′ exoribonuclease belonging to the RNR superfamily, catalyzes 3′ maturation of chloroplast ribosomal RNAs in Arabidopsis thaliana , 2005, Nucleic acids research.
[49] P. Fraser,et al. The biosynthesis and nutritional uses of carotenoids. , 2004, Progress in lipid research.
[50] C. Hunter,et al. Overexpression of β-carotene hydroxylase enhances stress tolerance in Arabidopsis , 2002, Nature.
[51] Thomas D. Schmittgen,et al. Analysis of relative gene expression data using real-time quantitative PCR and the 2(-Delta Delta C(T)) Method. , 2001, Methods.
[52] H. Burton,et al. Changes in chemical composition of tobacco lamina during senescence and curing. 1. Plastid pigments , 1985 .
[53] M. M. Bradford. A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding. , 1976, Analytical biochemistry.
[54] T. Weston. Biochemical characteristics of tobacco leaves during flue-curing , 1968 .
[55] A. Fargašová,et al. Assessment of Cr and Ni phytotoxicity from cutlery-washing waste-waters using biomass and chlorophyll production tests on mustard Sinapis alba L. seedlings , 2010, Environmental science and pollution research international.
[56] J. Roeraade,et al. Effects of flue-curing and ageing on the volatile, neutral and acidic constituents of Virginia tobacco☆ , 1977 .