Integrated genomics, physiology and breeding approaches for improving drought tolerance in crops
暂无分享,去创建一个
Rajeev K. Varshney | Richard Trethowan | Mainassara Zaman-Allah | Nese Sreenivasulu | M. Zaman-Allah | R. Varshney | N. Sreenivasulu | R R Mir | R. Trethowan | Reyazul Rouf Mir
[1] Jean-Marcel Ribaut,et al. Drought phenotyping in crops: From theory to practice. , 2014 .
[2] O. Edenhofer,et al. Intergovernmental Panel on Climate Change (IPCC) , 2013 .
[3] S. Ceccarelli,et al. Genome wide association analyses for drought tolerance related traits in barley (Hordeum vulgare L.) , 2012 .
[4] R. Varshney,et al. Novel Genomic Tools and Modern Genetic and Breeding Approaches for Crop Improvement , 2009, Journal of Plant Biochemistry and Biotechnology.
[5] R. Varshney,et al. Genomics Interventions in Crop Breeding for Sustainable Agriculture , 2012 .
[6] Thomas Altmann,et al. Dynamic ¹³C/¹ H NMR imaging uncovers sugar allocation in the living seed. , 2011, Plant biotechnology journal.
[7] S. Cannon,et al. Large-scale transcriptome analysis in chickpea (Cicer arietinum L.), an orphan legume crop of the semi-arid tropics of Asia and Africa , 2011, Plant biotechnology journal.
[8] D. Lobell,et al. Climate Trends and Global Crop Production Since 1980 , 2011, Science.
[9] E. Nevo,et al. An ATP-binding cassette subfamily G full transporter is essential for the retention of leaf water in both wild barley and rice , 2011, Proceedings of the National Academy of Sciences.
[10] Rajeev K Varshney,et al. Agricultural biotechnology for crop improvement in a variable climate: hope or hype? , 2011, Trends in plant science.
[11] M. Carazzolle,et al. Identification of novel soybean microRNAs involved in abiotic and biotic stresses , 2011, BMC Genomics.
[12] T. Sinclair. Challenges in breeding for yield increase for drought. , 2011, Trends in plant science.
[13] B. Oliver,et al. Microarrays, deep sequencing and the true measure of the transcriptome , 2011, BMC Biology.
[14] M. Zaman-Allah,et al. A conservative pattern of water use, rather than deep or profuse rooting, is critical for the terminal drought tolerance of chickpea , 2011, Journal of experimental botany.
[15] H. Rolletschek,et al. ABA biosynthesis and degradation contributing to ABA homeostasis during barley seed development under control and terminal drought-stress conditions. , 2011, Journal of experimental botany.
[16] M. Zaman-Allah,et al. Chickpea genotypes contrasting for seed yield under terminal drought stress in the field differ for traits related to the control of water use. , 2011, Functional plant biology : FPB.
[17] A. Paterson,et al. Metabolite and mineral analyses of cotton near-isogenic lines introgressed with QTLs for productivity and drought-related traits. , 2011, Physiologia plantarum.
[18] J. Rogers,et al. Crop genome sequencing: lessons and rationales. , 2011, Trends in plant science.
[19] Thomas Altmann,et al. Dynamic 13 C ⁄ 1 H NMR imaging uncovers sugar allocation in the living seed , 2011 .
[20] D. Villegas,et al. Association mapping in durum wheat grown across a broad range of water regimes. , 2011, Journal of experimental botany.
[21] V. Vadez,et al. Using genetic mapping and genomics approaches in understanding and improving drought tolerance in pearl millet. , 2011, Journal of experimental botany.
[22] David Bonnett,et al. Raising yield potential of wheat. I. Overview of a consortium approach and breeding strategies. , 2011, Journal of experimental botany.
[23] M. Sorrells,et al. Genomic selection for durable stem rust resistance in wheat , 2011, Euphytica.
[24] R. Varshney,et al. Comparative analysis of expressed sequence tags (ESTs) between drought-tolerant and -susceptible genotypes of chickpea under terminal drought stress , 2011, BMC Plant Biology.
[25] L. Tran,et al. Progress studies of drought-responsive genes in rice , 2011, Plant Cell Reports.
[26] N. Sreenivasulu,et al. Haplotyping, linkage mapping and expression analysis of barley genes regulated by terminal drought stress influencing seed quality , 2011, BMC Plant Biology.
[27] S. N. Nigam,et al. Identification of several small main-effect QTLs and a large number of epistatic QTLs for drought tolerance related traits in groundnut (Arachishypogaea L.) , 2010, Theoretical and Applied Genetics.
[28] Development of a Mesoamerican intra-genepool genetic map for quantitative trait loci detection in a drought tolerant × susceptible common bean (Phaseolus vulgaris L.) cross , 2010, Molecular Breeding.
[29] Jean-Marcel Ribaut,et al. Joint linkage–linkage disequilibrium mapping is a powerful approach to detecting quantitative trait loci underlying drought tolerance in maize , 2010, Proceedings of the National Academy of Sciences.
[30] L. Luo,et al. Genome-wide identification and analysis of drought-responsive microRNAs in Oryza sativa. , 2010, Journal of experimental botany.
[31] Spectral reflectance from a soybean canopy exposed to elevated CO2 and O3 , 2010, Journal of experimental botany.
[32] Eiji Kimura,et al. High-Throughput SuperSAGE for Digital Gene Expression Analysis of Multiple Samples Using Next Generation Sequencing , 2010, PloS one.
[33] L. Luo. Breeding for water-saving and drought-resistance rice (WDR) in China. , 2010, Journal of experimental botany.
[34] J. Passioura. Scaling up: the essence of effective agricultural research , 2010 .
[35] P. Gupta,et al. Marker‐Assisted Selection as a Component of Conventional Plant Breeding , 2010 .
[36] P. Langridge,et al. Genetic and genomic tools to improve drought tolerance in wheat. , 2010, Journal of experimental botany.
[37] Matthew P. Reynolds,et al. Association of water spectral indices with plant and soil water relations in contrasting wheat genotypes , 2010, Journal of experimental botany.
[38] S. Chapman,et al. Heat and drought adaptive QTL in a wheat population designed to minimize confounding agronomic effects , 2010, Theoretical and Applied Genetics.
[39] R. Mittler,et al. Genetic engineering for modern agriculture: challenges and perspectives. , 2010, Annual review of plant biology.
[40] Yafan Huang,et al. Narrowing down the targets: towards successful genetic engineering of drought-tolerant crops. , 2010, Molecular plant.
[41] F. Tardieu,et al. Dissection and modelling of abiotic stress tolerance in plants. , 2010, Current opinion in plant biology.
[42] J. Rafalski,et al. Association genetics in crop improvement. , 2010, Current opinion in plant biology.
[43] R. Twyman,et al. The humanitarian impact of plant biotechnology: recent breakthroughs vs bottlenecks for adoption. , 2010, Current opinion in plant biology.
[44] J. Ribaut,et al. Molecular breeding in developing countries: challenges and perspectives. , 2010, Current opinion in plant biology.
[45] Rattan Yadav,et al. Molecular Markers Based Approaches for Drought Tolerance , 2010 .
[46] R. Bernardo. Genomewide selection with minimal crossing in self-pollinated crops. , 2010 .
[47] Gokhan Hacisalihoglu,et al. Near-infrared reflectance spectroscopy predicts protein, starch, and seed weight in intact seeds of common bean ( Phaseolus vulgaris L.). , 2010, Journal of agricultural and food chemistry.
[48] W. Xu,et al. Identification of Differential Gene Expression in Brassica rapa Nectaries through Expressed Sequence Tag Analysis , 2010, PLoS ONE.
[49] M. Reynolds,et al. Adapting crops to climate change: a summary. , 2010 .
[50] M. Reynolds,et al. Multi-location testing as a tool to identify plant response to global climate change. , 2010 .
[51] M. Reynolds. Climate change and crop production. , 2010 .
[52] R. Sunkar,et al. Array platforms and bioinformatics tools for the analysis of plant transcriptome in response to abiotic stress. , 2010, Methods in molecular biology.
[53] M. Ashraf,et al. Inducing drought tolerance in plants: recent advances. , 2010, Biotechnology advances.
[54] Jordi Sardans,et al. Changes in water content and distribution in Quercus ilex leaves during progressive drought assessed by in vivo 1H magnetic resonance imaging , 2010, BMC Plant Biology.
[55] R. Varshney,et al. The first set of EST resource for gene discovery and marker development in pigeonpea (Cajanus cajan L.) , 2010, BMC Plant Biology.
[56] D. Jain,et al. Analysis of gene expression in response to water deficit of chickpea (Cicer arietinum L.) varieties differing in drought tolerance , 2010, BMC Plant Biology.
[57] Peter Langridge,et al. Phenotyping approaches for physiological breeding and gene discovery in wheat , 2009 .
[58] Christopher D Town,et al. A comprehensive resource of drought- and salinity- responsive ESTs for gene discovery and marker development in chickpea (Cicer arietinum L.) , 2009, BMC Genomics.
[59] R. Richards,et al. Grain Yield Improvement in Water‐Limited Environments , 2009 .
[60] H. Jones,et al. Thermal infrared imaging of crop canopies for the remote diagnosis and quantification of plant responses to water stress in the field. , 2009, Functional plant biology : FPB.
[61] A. Kumar,et al. Identification and characterization of large-effect quantitative trait loci for grain yield under lowland drought stress in rice using bulk-segregant analysis , 2009, Theoretical and Applied Genetics.
[62] S. Jackson,et al. Next-generation sequencing technologies and their implications for crop genetics and breeding. , 2009, Trends in biotechnology.
[63] P. McCourt,et al. Development of drought-tolerant canola (Brassica napus L.) through genetic modulation of ABA-mediated stomatal responses. , 2009 .
[64] Ghasem Hosseini Salekdeh,et al. Conceptual framework for drought phenotyping during molecular breeding. , 2009, Trends in plant science.
[65] J. Araus,et al. Advances in Maize Genomics and Their Value for Enhancing Genetic Gains from Breeding , 2009, International journal of plant genomics.
[66] Ulrich Schurr,et al. Combined MRI-PET dissects dynamic changes in plant structures and functions. , 2009, The Plant journal : for cell and molecular biology.
[67] Zhiwu Zhang,et al. Association Mapping: Critical Considerations Shift from Genotyping to Experimental Design , 2009, The Plant Cell Online.
[68] M. Bänziger,et al. Drought stress and tropical maize: QTL-by-environment interactions and stability of QTLs across environments for yield components and secondary traits , 2009, Theoretical and Applied Genetics.
[69] A. Korol,et al. Genomic dissection of drought resistance in durum wheat x wild emmer wheat recombinant inbreed line population. , 2009, Plant, cell & environment.
[70] H. Nguyen,et al. Physiological and molecular approaches to improve drought resistance in soybean. , 2009, Plant & cell physiology.
[71] Abraham Blum,et al. Effective use of water (EUW) and not water-use efficiency (WUE) is the target of crop yield improvement under drought stress , 2009 .
[72] G. Slafer,et al. Raising yield potential in wheat. , 2009, Journal of experimental botany.
[73] R. Quatrano,et al. Between a rock and a dry place: the water-stressed moss. , 2009, Molecular plant.
[74] R. Anderssen,et al. Molecular classification of barley (Hordeum vulgare L.) mutants using derivative NIR spectroscopy. , 2009, Journal of agricultural and food chemistry.
[75] B. Dell,et al. Water deficits in wheat: fructan exohydrolase (1-FEH) mRNA expression and relationship to soluble carbohydrate concentrations in two varieties. , 2009, The New phytologist.
[76] R. Serraj,et al. The large-effect drought-resistance QTL qtl12.1 increases water uptake in upland rice , 2009 .
[77] E. Todorovska,et al. Genomics Assisted Improvement of Drought Tolerance in Maize: QTL Approaches , 2009 .
[78] E. Nevo,et al. Chromosomal regions controlling seedling drought resistance in Israeli wild barley, Hordeum spontaneum C. Koch , 2009, Genetic Resources and Crop Evolution.
[79] S. Mccouch,et al. Marker Assisted Breeding , 2009 .
[80] H. Bohnert,et al. Abiotic stress tolerance: from gene discovery in model organisms to crop improvement. , 2009, Molecular plant.
[81] A. Paterson,et al. Field evaluation of cotton near-isogenic lines introgressed with QTLs for productivity and drought related traits , 2009, Molecular Breeding.
[82] C. Molina,et al. SuperSAGE: the drought stress-responsive transcriptome of chickpea roots , 2008, BMC Genomics.
[83] K. Nielsen,et al. DeepSAGE – tag based transcriptome analysis beyond microarrays. , 2008 .
[84] R. Bernardo. Molecular Markers and Selection for Complex Traits in Plants: Learning from the Last 20 Years , 2008 .
[85] M. Stephens,et al. RNA-seq: an assessment of technical reproducibility and comparison with gene expression arrays. , 2008, Genome research.
[86] Ky L. Mathews,et al. Multi-environment QTL mixed models for drought stress adaptation in wheat , 2008, Theoretical and Applied Genetics.
[87] S. Ceccarelli,et al. Quantitative trait loci associated with adaptation to Mediterranean dryland conditions in barley , 2008, Theoretical and Applied Genetics.
[88] J. Shendure. The beginning of the end for microarrays? , 2008, Nature Methods.
[89] M. Gerstein,et al. The Transcriptional Landscape of the Yeast Genome Defined by RNA Sequencing , 2008, Science.
[90] F. Tardieu,et al. ’ s Choice Series on the Next Generation of Biotech Crops Quantitative Trait Loci and Crop Performance under Abiotic Stress : Where Do We Stand ? , 2008 .
[91] N. Barkley,et al. Application of TILLING and EcoTILLING as Reverse Genetic Approaches to Elucidate the Function of Genes in Plants and Animals , 2008, Current genomics.
[92] R. Serraj,et al. Breeding upland rice for drought resistance , 2008 .
[93] Roberto Tuberosa,et al. Translational research impacting on crop productivity in drought-prone environments. , 2008, Current opinion in plant biology.
[94] H. Leung. Stressed genomics-bringing relief to rice fields. , 2008, Current opinion in plant biology.
[95] E. Mazzucotelli,et al. Drought tolerance improvement in crop plants: An integrated view from breeding to genomics , 2008 .
[96] C. Royo,et al. Quantitative Trait Loci for Grain Yield and Adaptation of Durum Wheat (Triticum durum Desf.) Across a Wide Range of Water Availability , 2008, Genetics.
[97] Thomas Neuberger,et al. Quantitative imaging of oil storage in developing crop seeds. , 2007, Plant biotechnology journal.
[98] A. Fehér,et al. The effect of drought and heat stress on reproductive processes in cereals. , 2007, Plant, cell & environment.
[99] Robbie Waugh,et al. Gene expression quantitative trait locus analysis of 16 000 barley genes reveals a complex pattern of genome-wide transcriptional regulation. , 2008, The Plant journal : for cell and molecular biology.
[100] M. Janitz. Next-generation genome sequencing : towards personalized medicine , 2008 .
[101] S. Ceccarelli,et al. QTLs for chlorophyll and chlorophyll fluorescence parameters in barley under post-flowering drought , 2008, Euphytica.
[102] Scott C. Chapman,et al. Use of crop models to understand genotype by environment interactions for drought in real-world and simulated plant breeding trials , 2008, Euphytica.
[103] Y. Kato,et al. Identification of QTLs controlling rice drought tolerance at seedling stage in hydroponic culture , 2008, Euphytica.
[104] V. Vadez,et al. Transgenic approaches for abiotic stress tolerance in plants: retrospect and prospects , 2008, Plant Cell Reports.
[105] R. Reiter,et al. Molecular Markers in a Commercial Breeding Program , 2007 .
[107] A. Condon,et al. Evaluating potential genetic gains in wheat associated with stress-adaptive trait expression in elite genetic resources under drought and heat stress , 2007 .
[108] Roberto Tuberosa,et al. Genetic dissection of seminal root architecture in elite durum wheat germplasm , 2007 .
[109] M. O’Connell,et al. Comparative transcript profiling in roots of Phaseolus acutifolius and P. vulgaris under water deficit stress , 2007 .
[110] Jochen C Reif,et al. Novel throughput phenotyping platforms in plant genetic studies. , 2007, Trends in plant science.
[111] N. Mantri,et al. Transcriptional profiling of chickpea genes differentially regulated in response to high-salinity, cold and drought , 2007, BMC Genomics.
[112] A. Börner. Identification and Mapping Quantitative Trait Loci for Stem Reserve Mobilisation in Wheat (Triticum aestivum L.) , 2007 .
[113] Roberto Tuberosa,et al. Conserved noncoding genomic sequences associated with a flowering-time quantitative trait locus in maize , 2007, Proceedings of the National Academy of Sciences.
[114] G. M. Paulsen,et al. Markers associated with a QTL for grain yield in wheat under drought , 2007, Molecular Breeding.
[115] C. Hash,et al. Quantitative trait loci for grain yield in pearl millet under variable postflowering moisture conditions , 2007 .
[116] X. Chang,et al. Identification of Quantitative Trait loci and Environmental Interactions for Accumulation and Remobilization of Water-Soluble Carbohydrates in Wheat (Triticum aestivum L.) Stems , 2007, Genetics.
[117] J. Witcombe,et al. Field evaluation of upland rice lines selected for QTLs controlling root traits , 2007 .
[118] Gary Atlin,et al. A large-effect QTL for grain yield under reproductive-stage drought stress in upland rice. , 2007 .
[119] H. Mei,et al. Relationship between Coleoptile Length and Drought Resistance and Their QTL Mapping in Rice , 2007 .
[120] M. Reynolds,et al. Physiological interventions in breeding for adaptation to abiotic stress , 2007 .
[121] N. Sreenivasulu,et al. Deciphering the regulatory mechanisms of abiotic stress tolerance in plants by genomic approaches. , 2007, Gene.
[122] Richard Trethowan,et al. Drought-adaptive traits derived from wheat wild relatives and landraces. , 2006, Journal of Experimental Botany.
[123] Jean-Marcel Ribaut,et al. Marker-assisted selection to improve drought adaptation in maize: the backcross approach, perspectives, limitations, and alternatives. , 2006, Journal of experimental botany.
[124] H. Bohnert,et al. Journal of Experimental Botany Advance Access published November 16, 2006 Journal of Experimental Botany, Page 1 of 12 Integrated Approaches to Sustain and Improve Plant Production under Drought Stress Special Issue , 2006 .
[125] S. Salvi,et al. Root-ABA1 QTL affects root lodging, grain yield, and other agronomic traits in maize grown under well-watered and water-stressed conditions. , 2006, Journal of experimental botany.
[126] H. Jones. Monitoring plant and soil water status: established and novel methods revisited and their relevance to studies of drought tolerance. , 2006, Journal of experimental botany.
[127] Yong-lian Zheng,et al. Quantitative trait locus analysis of drought tolerance and yield in Maize in China , 2005, Plant Molecular Biology Reporter.
[128] H. H. Laar,et al. Scale and Complexity in Plant Systems Research : Gene-Plant-Crop Relations , 2007 .
[129] M. Goddard,et al. Genomic selection. , 2007, Journal of animal breeding and genetics = Zeitschrift fur Tierzuchtung und Zuchtungsbiologie.
[130] O. Edenhofer,et al. Mitigation from a cross-sectoral perspective , 2007 .
[131] R. Varshney,et al. Genomics-Assisted Crop Improvement , 2007 .
[132] S. Salvi,et al. Cloning Qtls in Plants , 2007 .
[133] S. Ceccarelli,et al. Molecular Approaches and Breeding Strategies for Drought Tolerance in Barley , 2007 .
[134] H. Canci,et al. Evaluation of perennial wild Cicer species for drought resistance , 2007, Genetic Resources and Crop Evolution.
[135] Jeppe Emmersen,et al. DeepSAGE—digital transcriptomics with high sensitivity, simple experimental protocol and multiplexing of samples , 2006, Nucleic acids research.
[136] Roberto Tuberosa,et al. Genomics-based approaches to improve drought tolerance of crops. , 2006, Trends in plant science.
[137] R. Bressan,et al. Osmogenetics: Aristotle to Arabidopsis , 2006, The Plant Cell Online.
[138] R. Bruskiewich,et al. Gene expression microarrays and their application in drought stress research. , 2006 .
[139] G. C. Tucker. Triticum aestivum L. , 2006 .
[140] Jianhua Zhang,et al. Grain filling of cereals under soil drying. , 2006, The New phytologist.
[141] A. Price,et al. Marker-assisted selection to introgress rice QTLs controlling root traits into an Indian upland rice variety , 2006, Theoretical and Applied Genetics.
[142] S. Chandra,et al. Genetic variability of drought-avoidance root traits in the mini-core germplasm collection of chickpea (Cicer arietinum L.). , 2006, Euphytica.
[143] K. Findell,et al. Simulation of Sahel drought in the 20th and 21st centuries. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[144] R. Varshney,et al. Genomics-assisted breeding for crop improvement. , 2005, Trends in plant science.
[145] Roberto Tuberosa,et al. Root-ABA1, a major constitutive QTL, affects maize root architecture and leaf ABA concentration at different water regimes. , 2005, Journal of experimental botany.
[146] S. Salvi,et al. To clone or not to clone plant QTLs: present and future challenges. , 2005, Trends in plant science.
[147] R. Bruskiewich,et al. Identification of candidate genes for drought stress tolerance in rice by the integration of a genetic (QTL) map with the rice genome physical map. , 2005, Journal of Zhejiang University. Science. B.
[148] M. Reynolds,et al. Prospects for utilising plant‐adaptive mechanisms to improve wheat and other crops in drought‐ and salinity‐prone environments , 2005 .
[149] R. Sunkar,et al. Drought and Salt Tolerance in Plants , 2005 .
[150] Amit Kumar Sharma,et al. Recent Advances in Marker-Assisted Selection for Drought Tolerance in Pearl Millet , 2005 .
[151] A. Pellegrino,et al. Relationships between plant and soil water status in vine (Vitis vinifera L.) , 2005, Plant and Soil.
[152] S. Salvi,et al. Validation and characterization of a major QTL affecting leaf ABA concentration in maize , 2005, Molecular Breeding.
[153] Jeffrey W. White,et al. Genomics and the physiologist: bridging the gap between genes and crop response , 2004 .
[154] H. Jones. Irrigation scheduling: advantages and pitfalls of plant-based methods. , 2004, Journal of experimental botany.
[155] M. Sorrells,et al. Identification of drought-inducible genes and differentially expressed sequence tags in barley , 2004, Theoretical and Applied Genetics.
[156] Xinyou Yin,et al. Role of crop physiology in predicting gene-to-phenotype relationships. , 2004, Trends in plant science.
[157] A. Paterson,et al. Genetic dissection of cotton physiological responses to arid conditions and their inter‐relationships with productivity , 2004 .
[158] B. Courtois,et al. Locating QTLs controlling constitutive root traits in the rice population IAC 165 × Co39 , 2003, Euphytica.
[159] B. Courtois,et al. Mapping QTLs associated with drought avoidance in upland rice grown in the Philippines and West Africa , 2002, Plant Molecular Biology.
[160] D. T. Rosenow,et al. Mapping QTLs associated with drought resistance in sorghum (Sorghum bicolor L. Moench) , 2002, Plant Molecular Biology.
[161] S. Salvi,et al. Identification of QTLs for root characteristics in maize grown in hydroponics and analysis of their overlap with QTLs for grain yield in the field at two water regimes , 2002, Plant Molecular Biology.
[162] K. Edwards,et al. Toward positional cloning of Vgt1, a QTL controlling the transition from the vegetative to the reproductive phase in maize , 2002, Plant Molecular Biology.
[163] D. Hoisington,et al. Identification of quantitative trait loci under drought conditions in tropical maize. 1. Flowering parameters and the anthesis-silking interval , 1996, Theoretical and Applied Genetics.
[164] T. Toojinda,et al. Quantitative Trait Loci Associated with Drought Tolerance at Reproductive Stage in Rice , 2004 .
[165] R. Varshney,et al. Functional Genomics for Tolerance to Abiotic Stress in Cereals , 2004 .
[166] A. Blum,et al. Improving wheat grain filling under stress by stem reserve mobilisation , 2004, Euphytica.
[167] Peter Winter,et al. Gene expression analysis of plant host–pathogen interactions by SuperSAGE , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[168] Xiangkun Wang,et al. QTL mapping of the root traits and their correlation analysis with drought resistance using DH lines from paddy and upland rice cross , 2003 .
[169] K. Shinozaki,et al. Regulatory network of gene expression in the drought and cold stress responses. , 2003, Current opinion in plant biology.
[170] D. This,et al. QTL for relative water content in field-grown barley and their stability across Mediterranean environments , 2003, Theoretical and Applied Genetics.
[171] Feiyan Liu,et al. Mapping QTLs and candidate genes for rice root traits under different water-supply conditions and comparative analysis across three populations , 2003, Theoretical and Applied Genetics.
[172] M. Foolad,et al. Genetics of drought tolerance during seed germination in tomato: inheritance and QTL mapping. , 2003, Genome.
[173] Z. J. Zhang,et al. Associations of simple sequence repeats with quantitative trait variation including biotic and abiotic stress tolerance in Hordeum spontaneum , 2003 .
[174] S. Ceccarelli,et al. QTLs for agronomic traits in the Mediterranean environment identified in recombinant inbred lines of the cross 'Arta' × H. spontaneum 41-1 , 2003, Theoretical and Applied Genetics.
[175] H. Nguyen,et al. Genetic analysis of drought resistance in rice by molecular markers: association between secondary traits and field performance , 2003 .
[176] Pierre Dardenne,et al. Near‐Infrared Spectroscopy on Chopper to Measure Maize Forage Quality Parameters Online , 2003 .
[177] S. Hazen,et al. Gene expression profiling of plant responses to abiotic stress , 2003, Functional & Integrative Genomics.
[179] X. Sirault,et al. QTLs for grain carbon isotope discrimination in field-grown barley , 2002, Theoretical and Applied Genetics.
[180] N. Seetharama,et al. QTL mapping of stay-green in two sorghum recombinant inbred populations , 2002, Theoretical and Applied Genetics.
[181] S. Merlot,et al. Use of infrared thermal imaging to isolate Arabidopsis mutants defective in stomatal regulation. , 2002, The Plant journal : for cell and molecular biology.
[182] H. Griffiths,et al. Linking drought-resistance mechanisms to drought avoidance in upland rice using a QTL approach: progress and new opportunities to integrate stomatal and mesophyll responses. , 2002, Journal of experimental botany.
[183] J. Bennetzen,et al. Novel genes are enriched in normalized cDNA libraries from drought-stressed seedlings of rice (Oryza sativa L. subsp. indica cv. Nagina 22). , 2002, Genome.
[184] C. T. Hash,et al. Quantitative trait loci associated with traits determining grain and stover yield in pearl millet under terminal drought-stress conditions , 2002, Theoretical and Applied Genetics.
[185] B. S. Ahloowalia,et al. Molecular techniques in crop improvement , 2002 .
[186] Rosalind J Wright,et al. Genomic dissection of genotype x environment interactions conferring adaptation of cotton to arid conditions. , 2001, Genome research.
[187] O. Merah,et al. QTLs for agronomic traits from a Mediterranean barley progeny grown in several environments , 2001, Theoretical and Applied Genetics.
[188] D. T. Rosenow,et al. Quantitative trait loci influencing drought tolerance in grain sorghum (Sorghum bicolor L. Moench) , 2001, Theoretical and Applied Genetics.
[189] D. This,et al. New QTLs identified for plant water status, water-soluble carbohydrate and osmotic adjustment in a barley population grown in a growth-chamber under two water regimes , 2001, Theoretical and Applied Genetics.
[190] Kenneth L. McNally,et al. Evaluation of near-isogenic lines of rice introgressed with QTLs for root depth through marker-aided selection , 2001, Theoretical and Applied Genetics.
[191] M. Goddard,et al. Prediction of total genetic value using genome-wide dense marker maps. , 2001, Genetics.
[192] James E. Specht,et al. Soybean response to water : A QTL analysis of drought tolerance , 2001 .
[193] T. Sinclair,et al. Identification of Soybean Genotypes with N2 Fixation Tolerance to Water Deficits , 2000 .
[194] D. Straeten,et al. Imaging techniques and the early detection of plant stress. , 2000, Trends in plant science.
[195] P. Subudhi,et al. Quantitative trait loci for the stay green trait in sorghum (Sorghum bicolor L. Moench): consistency across genetic backgrounds and environments , 2000, Theoretical and Applied Genetics.
[196] O. Crasta,et al. Molecular mapping of QTLs conferring stay-green in grain sorghum (Sorghum bicolor L. Moench). , 2000, Genome.
[197] D. Butler,et al. Identification of genomic regions associated with stay green in sorghum by testing RILs in multiple environments , 2000, Theoretical and Applied Genetics.
[198] W. Pfeiffer,et al. Evaluating a conceptual model for drought tolerance , 2000 .
[199] J. Ribaut,et al. Molecular approaches for the genetic improvement of cereals for stable production in water-limited environments , 2000 .
[200] S. Salvi,et al. QTL analysis of drought-related traits and grain yield in relation to genetic variation for leaf abscisic acid concentration in field-grown maize , 1999 .
[201] S. Salvi,et al. RFLP mapping of quantitative trait loci controlling abscisic acid concentration in leaves of drought-stressed maize (Zea mays L.) , 1998, Theoretical and Applied Genetics.
[202] M. Khairallah,et al. Several QTLs involved in osmotic-adjustment trait variation in barley (Hordeum vulgare L.) , 1998, Theoretical and Applied Genetics.
[203] D. Ashley,et al. An Additional QTL for Water Use Efficiency in Soybean , 1998 .
[204] D. Hoisington,et al. Identification of quantitative trait loci under drought conditions in tropical maize. 2. Yield components and marker-assisted selection strategies , 1997, Theoretical and Applied Genetics.
[205] B. Courtois,et al. Mapping genes controlling root morphology and root distribution in a doubled-haploid population of rice , 1997, Theoretical and Applied Genetics.
[206] J. Kelly,et al. Marker‐Assisted Selection to Improve Drought Resistance in Common Bean , 1997 .
[207] J. Acosta-Gallegos,et al. Improving Common Bean Performance under Drought Stress , 1997 .
[208] J. Lilley,et al. Locating QTL for osmotic adjustment and dehydration tolerance in rice , 1996 .
[209] D. Ashley,et al. Molecular Markers Associated with Water Use Efficiency and Leaf Ash in Soybean , 1996 .
[210] R. Van der Hoeven,et al. Visualization of differential gene expression using a novel method of RNA fingerprinting based on AFLP: analysis of gene expression during potato tuber development. , 1996, The Plant journal : for cell and molecular biology.
[211] M. Saxena,et al. Adaptation of spring-sown chickpea to the Mediterranean basin. I. Response to moisture supply , 1993 .
[212] A. Pardee,et al. Differential display of eukaryotic messenger RNA by means of the polymerase chain reaction. , 1992, Science.
[213] R. Richards. Crop improvement for temperate Australia: Future opportunities , 1991 .
[214] J. Nienhuis,et al. Restriction Fragment Length Polymorphisms Associated with Water Use Efficiency in Tomato , 1989, Science.
[215] M. Ludlow,et al. Influence of soil water supply on the plant water balance of four tropical grain legumes , 1986 .
[216] J. Passioura,et al. Grain yield, harvest index, and water use of wheat. , 1977 .
[217] Howard C. Berg,et al. Genetic analysis , 1957, Nature Biotechnology.