Elevated CO2 increases biomass of Sorghum bicolor green prop roots under drought conditions via soluble sugar accumulation and photosynthetic activity.
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M. Alves-Ferreira | M. F. Grossi-de-Sá | M. Buckeridge | Jean-Christophe Cocuron | A. P. de Souza | L. Arge | Tamires de Souza Rodrigues | João Travassos-Lins | Fernanda Alves de Freitas Guedes
[1] Danmei Liu,et al. Physiological and transcriptome analysis of response of soybean (Glycine max) to cadmium stress under elevated CO2 concentration. , 2023, Journal of hazardous materials.
[2] J. Papenbrock,et al. Elevated CO2 mitigates the impact of drought stress by upregulating glucosinolate metabolism in Arabidopsis thaliana. , 2022, Plant, Cell and Environment.
[3] C. Oh,et al. Elevated CO2 Alters the Physiological and Transcriptome Responses of Pinus densiflora to Long-Term CO2 Exposure , 2022, Plants.
[4] U. Pérez-López,et al. Sorghum bicolor prioritizes the recovery of its photosynthetic activity when re‐watered after severe drought stress, while manages to preserve it under elevated CO 2 and drought , 2022, Journal of Agronomy and Crop Science.
[5] Ashverya Laxmi,et al. Role of Sugar and Auxin Crosstalk in Plant Growth and Development. , 2021, Physiologia plantarum.
[6] Sonia Osorio,et al. Primary Metabolite Profile Changes in Coffea spp. Promoted by Single and Combined Exposure to Drought and Elevated CO2 Concentration , 2021, Metabolites.
[7] G. Murtaza,et al. Sorghum Water Extract Application Mediates Antioxidant Defense and Confers Drought Stress Tolerance in Wheat , 2021, Journal of Plant Growth Regulation.
[8] J. Le gourrierec,et al. Convergence and Divergence of Sugar and Cytokinin Signaling in Plant Development , 2021, International journal of molecular sciences.
[9] S. Long,et al. 30 years of free‐air carbon dioxide enrichment (FACE): What have we learned about future crop productivity and its potential for adaptation? , 2020, Global change biology.
[10] S. Heckathorn,et al. Effect of drought and carbon dioxide on nutrient uptake and levels of nutrient-uptake proteins in roots of barley. , 2020, American journal of botany.
[11] S. C. Martins,et al. Coffee plants respond to drought and elevated [CO2] through changes in stomatal function, plant hydraulic conductance, and aquaporin expression , 2020 .
[12] Zhanghua Wu,et al. Interactive effects of elevated CO2 concentration and combined heat and drought stress on tomato photosynthesis , 2020, BMC Plant Biology.
[13] Dalong Zhang,et al. CO2 enrichment enhanced drought resistance by regulating growth, hydraulic conductivity and phytohormone contents in the root of cucumber seedlings. , 2020, Plant physiology and biochemistry : PPB.
[14] K. K. Viswanath,et al. Plant Lipoxygenases and Their Role in Plant Physiology , 2020, Journal of Plant Biology.
[15] A. Michelsen,et al. Long-term effects of elevated CO2, nighttime warming and drought on plant secondary metabolites in a temperate heath ecosystem. , 2020, Annals of botany.
[16] Jian Gao,et al. Identification and Characterization of the Glutathione S-Transferase (GST) Family in Radish Reveals a Likely Role in Anthocyanin Biosynthesis and Heavy Metal Stress Tolerance. , 2020, Gene.
[17] A. Ben-Hur,et al. Transcriptome Analysis of Drought-Resistant and Drought-Sensitive Sorghum (Sorghum bicolor) Genotypes in Response to PEG-Induced Drought Stress , 2020, International journal of molecular sciences.
[18] Anthony M. Bolger,et al. De Novo Transcriptome Analysis of Durum Wheat Flag Leaves Provides New Insights Into the Regulatory Response to Elevated CO2 and High Temperature , 2019, Front. Plant Sci..
[19] Christopher R. Baker,et al. Transcriptomic analysis of field-droughted sorghum from seedling to maturity reveals biotic and metabolic responses , 2019, Proceedings of the National Academy of Sciences.
[20] R. Irizarry. ggplot2 , 2019, Introduction to Data Science.
[21] Carolyn J. Lawrence-Dill,et al. Gene Ontology Meta Annotator for Plants (GOMAP) , 2019, Plant Methods.
[22] J. Franzaring,et al. Root exudation of carbohydrates and cations from barley in response to drought and elevated CO2 , 2019, Plant and Soil.
[23] J. Sheen,et al. Integration of nutrient, energy, light, and hormone signalling via TOR in plants. , 2019, Journal of experimental botany.
[24] M. Alves-Ferreira,et al. Short-term responses of soybean roots to individual and combinatorial effects of elevated [CO2] and water deficit. , 2019, Plant science : an international journal of experimental plant biology.
[25] Karl G. Kugler,et al. The Systems Architecture of Molecular Memory in Poplar after Abiotic Stress[OPEN] , 2019, Plant Cell.
[26] S. Jagadish,et al. Drought and High Temperature Stress and Traits Associated with Tolerance , 2019, Agronomy Monographs.
[27] X. Ai,et al. Metabolomics analysis reveals that elevated atmospheric CO2 alleviates drought stress in cucumber seedling leaves. , 2018, Analytical biochemistry.
[28] A. Massarutto,et al. Does drought always cause economic losses in agriculture? An empirical investigation on the distributive effects of drought events in some areas of Southern Europe. , 2018, The Science of the total environment.
[29] L. Schreiber,et al. Osmotic stress enhances suberization of apoplastic barriers in barley seminal roots: analysis of chemical, transcriptomic and physiological responses , 2018, The New phytologist.
[30] Brian R. Miranda,et al. Can Future CO2 Concentrations Mitigate the Negative Effects of High Temperature and Longer Droughts on Forest Growth? , 2018, Forests.
[31] Olawuyi Oj,et al. Genomic Survey of ATP-Binding Cassette (ABC) Transporters in Sorghum bicolor (L.) Moench , 2018, Journal of Plant Sciences and Crop Protection.
[32] G. Fitzgerald,et al. Elevated [CO2] mitigates the effect of surface drought by stimulating root growth to access sub-soil water , 2018, PloS one.
[33] Felipe Klein Ricachenevsky,et al. Deep RNAseq indicates protective mechanisms of cold-tolerant indica rice plants during early vegetative stage , 2018, Plant Cell Reports.
[34] G. Fitzgerald,et al. The proportion of nitrate in leaf nitrogen, but not changes in root growth, are associated with decreased grain protein in wheat under elevated [CO2]. , 2017, Journal of plant physiology.
[35] Saman Seneweera,et al. Effects of Elevated Carbon Dioxide on Photosynthesis and Carbon Partitioning: A Perspective on Root Sugar Sensing and Hormonal Crosstalk , 2017, Front. Physiol..
[36] R. Turgeon,et al. The complex character of photosynthesis in cucumber fruit , 2017, Journal of experimental botany.
[37] Ryan F. McCormick,et al. The Sorghum bicolor reference genome: improved assembly and annotations, a transcriptome atlas, and signatures of genome organization , 2017, bioRxiv.
[38] S. Rasmussen,et al. Dhurrin metabolism in the developing grain of Sorghum bicolor (L.) Moench investigated by metabolite profiling and novel clustering analyses of time-resolved transcriptomic data , 2016, BMC Genomics.
[39] Ge Gao,et al. PlantTFDB 4.0: toward a central hub for transcription factors and regulatory interactions in plants , 2016, Nucleic Acids Res..
[40] Roland Eils,et al. Complex heatmaps reveal patterns and correlations in multidimensional genomic data , 2016, Bioinform..
[41] Jeffrey T Leek,et al. Transcript-level expression analysis of RNA-seq experiments with HISAT, StringTie and Ballgown , 2016, Nature Protocols.
[42] F. Hochholdinger. Untapping root system architecture for crop improvement , 2016, Journal of experimental botany.
[43] Max J. Feldman,et al. Grasses suppress shoot-borne roots to conserve water during drought , 2016, Proceedings of the National Academy of Sciences.
[44] B. Dell,et al. Contributions of Root WSC during Grain Filling in Wheat under Drought , 2016, Front. Plant Sci..
[45] F. Vinecky,et al. Selection of reliable reference genes for RT-qPCR analysis during developmental stages and abiotic stress in Setaria viridis , 2016, Scientific Reports.
[46] L. Trindade,et al. Drought stress tolerance strategies revealed by RNA-Seq in two sorghum genotypes with contrasting WUE , 2016, BMC Plant Biology.
[47] I. Janssens,et al. Future Climate CO2 Levels Mitigate Stress Impact on Plants: Increased Defense or Decreased Challenge? , 2016, Front. Plant Sci..
[48] V. Vadez,et al. Evaluation of Sorghum [Sorghum bicolor (L.)] Reference Genes in Various Tissues and under Abiotic Stress Conditions for Quantitative Real-Time PCR Data Normalization , 2016, Front. Plant Sci..
[49] Dhriti Singh,et al. Transcriptional regulation of drought response: a tortuous network of transcriptional factors , 2015, Front. Plant Sci..
[50] R. Sicher,et al. Effects of CO2 enrichment and drought pretreatment on metabolite responses to water stress and subsequent rehydration using potato tubers from plants grown in sunlit chambers. , 2015, Journal of plant physiology.
[51] J. Lynch,et al. Reduced Lateral Root Branching Density Improves Drought Tolerance in Maize1[OPEN] , 2015, Plant Physiology.
[52] Lei Shi,et al. Transcriptome Profiling of the Potato (Solanum tuberosum L.) Plant under Drought Stress and Water-Stimulus Conditions , 2015, PloS one.
[53] D. de Vos,et al. Elevated CO₂ mitigates drought and temperature-induced oxidative stress differently in grasses and legumes. , 2015, Plant science : an international journal of experimental plant biology.
[54] Waqas Ahmed Malik,et al. Transcriptomic complexity in young maize primary roots in response to low water potentials , 2014, BMC Genomics.
[55] M. Ciriolo,et al. Glutathione: new roles in redox signaling for an old antioxidant , 2014, Front. Pharmacol..
[56] Björn Usadel,et al. Trimmomatic: a flexible trimmer for Illumina sequence data , 2014, Bioinform..
[57] A. Alonso,et al. Targeted metabolomics of Physaria fendleri, an industrial crop producing hydroxy fatty acids. , 2014, Plant & cell physiology.
[58] R. Liu,et al. Light-harvesting chlorophyll a/b-binding proteins, positively involved in abscisic acid signalling, require a transcription repressor, WRKY40, to balance their function , 2013, Journal of experimental botany.
[59] Weijun Luo,et al. Pathview: an R/Bioconductor package for pathway-based data integration and visualization , 2013, Bioinform..
[60] J. Hatfield,et al. Dynamics of Plant Root Growth under Increased Atmospheric Carbon Dioxide , 2013 .
[61] Guangchuang Yu,et al. clusterProfiler: an R package for comparing biological themes among gene clusters. , 2012, Omics : a journal of integrative biology.
[62] David R. Kelley,et al. Differential gene and transcript expression analysis of RNA-seq experiments with TopHat and Cufflinks , 2012, Nature Protocols.
[63] Atul J. Butte,et al. Ten Years of Pathway Analysis: Current Approaches and Outstanding Challenges , 2012, PLoS Comput. Biol..
[64] B. Meyers,et al. Transcriptome dynamics through alternative polyadenylation in developmental and environmental responses in plants revealed by deep sequencing. , 2011, Genome research.
[65] R. Furbank,et al. Functional Analysis of Corn Husk Photosynthesis[W][OA] , 2011, Plant Physiology.
[66] S. Falcon,et al. GOSemSim: an R package for measuring semantic similarity among GO terms and gene products , 2010 .
[67] Ning Ma,et al. BLAST+: architecture and applications , 2009, BMC Bioinformatics.
[68] William Stafford Noble,et al. How does multiple testing correction work? , 2009, Nature Biotechnology.
[69] Brad T. Sherman,et al. Bioinformatics enrichment tools: paths toward the comprehensive functional analysis of large gene lists , 2008, Nucleic acids research.
[70] M. Stephens,et al. RNA-seq: an assessment of technical reproducibility and comparison with gene expression arrays. , 2008, Genome research.
[71] Fidel Ramírez,et al. Computing topological parameters of biological networks , 2008, Bioinform..
[72] E. Birney,et al. Pfam: the protein families database , 2013, Nucleic Acids Res..
[73] Jinxing Lin,et al. Awns play a dominant role in carbohydrate production during the grain‐filling stages in wheat (Triticum aestivum) , 2006 .
[74] H. Rogers,et al. Effects of elevated atmospheric CO2 on root dynamics and productivity of sorghum grown under conventional and conservation agricultural management practices , 2006 .
[75] Sheng Zhao,et al. Comprehensive Algorithm for Quantitative Real-Time Polymerase Chain Reaction , 2005, J. Comput. Biol..
[76] P. Shannon,et al. Cytoscape: A Software Environment for Integrated Models of Biomolecular Interaction Networks , 2003 .
[77] G. Horgan,et al. Relative expression software tool (REST©) for group-wise comparison and statistical analysis of relative expression results in real-time PCR , 2002 .
[78] M. Ashburner,et al. Gene Ontology: tool for the unification of biology , 2000, Nature Genetics.
[79] F. Adamsen,et al. The effects of free‐air CO2 enrichment and soil water availability on spatial and seasonal patterns of wheat root growth , 1999 .
[80] C. Chapple,et al. Cinnamate-4-Hydroxylase Expression in Arabidopsis (Regulation in Response to Development and the Environment) , 1997, Plant physiology.
[81] H. Rogers,et al. Response of plant roots to elevated atmospheric carbon dioxide , 1992 .
[82] L. Feldman,et al. The Anatomy of Seed Plants. Second Edition. , 1977 .
[83] P. Pinter,et al. Drought-induced changes in nitrogen partitioning between cyanide and nitrate in leaves and stems of sorghum grown at elevated CO2 are age dependent , 2016 .
[84] Absorption Maxima,et al. Chlorophylls and Carotenoids: Measurement and Characterization by UV-VIS Spectroscopy , 2001 .
[85] Susumu Goto,et al. KEGG: Kyoto Encyclopedia of Genes and Genomes , 2000, Nucleic Acids Res..