Genetic mapping of candidate loci for water‐deficit stress‐induced proline accumulation in bread wheat ( Triticum aestivum )
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[1] M. Kamruzzaman,et al. Pinpointing genomic loci for drought-induced proline and hydrogen peroxide accumulation in bread wheat under field conditions , 2022, BMC plant biology.
[2] F. Fiorani,et al. Abscisic acid-responsive element binding transcription factors contribute to proline synthesis and stress adaptation in Arabidopsis. , 2021, Journal of plant physiology.
[3] J. Poland,et al. Elucidating the genetics of grain yield and stress-resilience in bread wheat using a large-scale genome-wide association mapping study with 55,568 lines , 2021, Scientific Reports.
[4] Gustavo A. Lobos,et al. Genome-wide association study of cyanogenic glycosides, proline, sugars and pigments in Eucalyptus cladocalyx after eighteen consecutive dry summers. , 2021, Physiologia plantarum.
[5] Xuefeng Ma,et al. Genome-Wide Association Mapping of Seedling Drought Tolerance in Winter Wheat , 2020, Frontiers in Plant Science.
[6] M. Kamruzzaman,et al. Genetic dissection of bread wheat diversity and identification of adaptive loci in response to elevated tropospheric ozone. , 2020, Plant, cell & environment.
[7] Sung Chul Lee,et al. Pepper Novel Serine-Threonine Kinase CaDIK1 Regulates Drought Tolerance via Modulating ABA Sensitivity , 2020, Frontiers in Plant Science.
[8] Margaret H. Frank,et al. TBtools - an integrative toolkit developed for interactive analyses of big biological data. , 2020, Molecular plant.
[9] A. del Pozo,et al. Association mapping of drought tolerance indices in wheat: QTL-rich regions on chromosome 4A , 2020 .
[10] V. Moda‐Cirino,et al. Effect of Water Deficit on Morphoagronomic and Physiological Traits of Common Bean Genotypes with Contrasting Drought Tolerance , 2020, Water.
[11] J. Lynch,et al. Genetic components of root architecture and anatomy adjustments to water-deficit stress in spring barley. , 2019, Plant, cell & environment.
[12] T. Yamakawa,et al. Proline and carbohydrate metabolism in rice varieties (Oryza sativa L.) under various drought and recovery conditions , 2019, Plant Physiology Reports.
[13] P. S. Baenziger,et al. Drought Stress Tolerance in Wheat and Barley: Advances in Physiology, Breeding and Genetics Research , 2019, International journal of molecular sciences.
[14] B. Hayes,et al. Breeding improves wheat productivity under contrasting agrochemical input levels , 2019, Nature Plants.
[15] Jindong Liu,et al. Genetic architecture of grain yield in bread wheat based on genome-wide association studies , 2019, BMC Plant Biology.
[16] A. Gupta,et al. Stress Adaptive Plasticity: Aegilops tauschii and Triticum dicoccoides as Potential Donors of Drought Associated Morpho-Physiological Traits in Wheat , 2019, Front. Plant Sci..
[17] Marco Bindi,et al. Diverging importance of drought stress for maize and winter wheat in Europe , 2018, Nature Communications.
[18] Hadi Quesneville,et al. Linking the International Wheat Genome Sequencing Consortium bread wheat reference genome sequence to wheat genetic and phenomic data , 2018, Genome Biology.
[19] Wenqiang Wang,et al. Wheat F-Box Protein Gene TaFBA1 Is Involved in Plant Tolerance to Heat Stress , 2018, Front. Plant Sci..
[20] J. Poland,et al. Genetic Diversity and Population Structure of F3:6 Nebraska Winter Wheat Genotypes Using Genotyping-By-Sequencing , 2018, Front. Genet..
[21] Satoshi Ogawa,et al. Drought Response in Wheat: Key Genes and Regulatory Mechanisms Controlling Root System Architecture and Transpiration Efficiency , 2017, Front. Chem..
[22] J. Xie,et al. PDM3, a pentatricopeptide repeat-containing protein, affects chloroplast development , 2017, Journal of experimental botany.
[23] Guorong Zhang,et al. Genotyping-by-Sequencing (GBS) Revealed Molecular Genetic Diversity of Iranian Wheat Landraces and Cultivars , 2017, Front. Plant Sci..
[24] F. Tardieu,et al. Predictable 'meta-mechanisms' emerge from feedbacks between transpiration and plant growth and cannot be simply deduced from short-term mechanisms. , 2017, Plant, cell & environment.
[25] Liang Chen,et al. Association mapping for photosynthesis and yield traits under two moisture conditions and their drought indices in winter bread wheat (Triticum aestivum L.) using SSR markers , 2017 .
[26] A. Ipek,et al. Effects of high temperature stress on enzymatic and nonenzymaticantioxidants and proteins in strawberry plants , 2016 .
[27] Valpuri Sovero,et al. Genome-assisted Breeding For Drought Resistance , 2016, Current genomics.
[28] J. Léon,et al. Genome-Wide Association Mapping in the Global Diversity Set Reveals New QTL Controlling Root System and Related Shoot Variation in Barley , 2016, Front. Plant Sci..
[29] D. Salt,et al. Plant Ionomics: From Elemental Profiling to Environmental Adaptation. , 2016, Molecular plant.
[30] Feibing Wang,et al. A novel Cys2/His2 zinc finger protein gene from sweetpotato, IbZFP1, is involved in salt and drought tolerance in transgenic Arabidopsis , 2016, Planta.
[31] M. Baum,et al. Genome-Wide Association Mapping of Yield and Grain Quality Traits in Winter Wheat Genotypes , 2015, PloS one.
[32] N. Sreenivasulu,et al. Role of proline in cell wall synthesis and plant development and its implications in plant ontogeny , 2015, Front. Plant Sci..
[33] M. Frei,et al. Genetic dissection of ozone tolerance in rice (Oryza sativa L.) by a genome-wide association study , 2014, Journal of experimental botany.
[34] M. M. Slabbert,et al. Antioxidant enzyme activity, proline accumulation, leaf area and cell membrane stability in water stressed Amaranthus leaves , 2014 .
[35] G. Wang,et al. Proline responding1 Plays a Critical Role in Regulating General Protein Synthesis and the Cell Cycle in Maize[C][W][OPEN] , 2014, Plant Cell.
[36] D. Golldack,et al. Tolerance to drought and salt stress in plants: Unraveling the signaling networks , 2014, Front. Plant Sci..
[37] T. Juenger,et al. Genome-Wide Association Mapping Combined with Reverse Genetics Identifies New Effectors of Low Water Potential-Induced Proline Accumulation in Arabidopsis1[W][OPEN] , 2013, Plant Physiology.
[38] H. Shao,et al. Salt Stress Encourages Proline Accumulation by Regulating Proline Biosynthesis and Degradation in Jerusalem Artichoke Plantlets , 2013, PloS one.
[39] J. Pichtel,et al. Role of proline under changing environments , 2012, Plant signaling & behavior.
[40] Yong Li,et al. Over-expression of GsZFP1, an ABA-responsive C2H2-type zinc finger protein lacking a QALGGH motif, reduces ABA sensitivity and decreases stomata size. , 2012, Journal of plant physiology.
[41] Klaus Pillen,et al. AB-QTL analysis reveals new alleles associated to proline accumulation and leaf wilting under drought stress conditions in barley (Hordeum vulgare L.) , 2012, BMC Genetics.
[42] Juan Peng,et al. Arabidopsis F-box gene FOA1 involved in ABA signaling , 2012, Science China Life Sciences.
[43] Jairus Bowne,et al. Drought responses of leaf tissues from wheat cultivars of differing drought tolerance at the metabolite level. , 2012, Molecular plant.
[44] Justin O Borevitz,et al. Genome-wide association studies in plants: the missing heritability is in the field , 2011, Genome Biology.
[45] P. Verslues,et al. Essential Role of Tissue-Specific Proline Synthesis and Catabolism in Growth and Redox Balance at Low Water Potential1[W][OA] , 2011, Plant Physiology.
[46] P. Verslues,et al. Mechanisms independent of abscisic acid (ABA) or proline feedback have a predominant role in transcriptional regulation of proline metabolism during low water potential and stress recovery. , 2010, Plant, cell & environment.
[47] F. Gomes,et al. Osmotic adjustment, proline accumulation and cell membrane stability in leaves of Cocos nucifera submitted to drought stress , 2010 .
[48] B. Larkins,et al. Identification and characterization of the maize arogenate dehydrogenase gene family , 2010, Journal of experimental botany.
[49] A. Savouré,et al. Proline: a multifunctional amino acid. , 2010, Trends in plant science.
[50] N. Nurlaeny,et al. Proline and abscisic acid content in droughted corn plant inoculated with Azospirillum sp. and arbuscular mycorrhizae fungi. , 2009 .
[51] M. Trovato,et al. Modulation of intracellular proline levels affects flowering time and inflorescence architecture in Arabidopsis , 2008, Plant Molecular Biology.
[52] M. Daly,et al. Haploview: analysis and visualization of LD and haplotype maps , 2005, Bioinform..
[53] L. Vieira,et al. Osmotic adjustment in transgenic citrus rootstock Carrizo citrange (Citrus sinensis Osb. x Poncirus trifoliata L. Raf.) overproducing proline , 2004 .
[54] S. Gabriel,et al. The Structure of Haplotype Blocks in the Human Genome , 2002, Science.
[55] M. Van Montagu,et al. Osmoregulation of a Pyrroline-5-Carboxylate Reductase Gene in Arabidopsis thaliana , 1993, Plant physiology.
[56] T. Elthon,et al. Submitochondrial location and electron transport characteristics of enzymes involved in proline oxidation. , 1981, Plant physiology.
[57] D. E. Koeppe,et al. Oxidation of proline by plant mitochondria. , 1978, Plant physiology.
[58] A. Dai. Increasing drought under global warming in observations and models , 2013 .
[59] A. Maleki,et al. Inheritance of proline content in bread wheat (Triticum aestivum L.) under rainfed conditions. , 2010 .
[60] P. D. Heerden,et al. Evaluation of proline accumulation as an indicator of drought tolerance in spring wheat cultivars , 1996 .
[61] G. Zúñiga,et al. Distribution of glycine-betaine and proline in water stressed and unstressed barley leaves , 1989 .
[62] C. Tebaldi,et al. References and Notes Supporting Online Material Materials and Methods Figs. S1 and S2 Tables S1 and S2 References Prioritizing Climate Change Adaptation Needs for Food Security in 2030 , 2022 .