Comprehensive meta-QTL analysis for dissecting the genetic architecture of stripe rust resistance in bread wheat
暂无分享,去创建一个
O. Dhankher | U. Kumar | R R Mir | Mohd Anwar Khan | Sundeep Kumar | D. Latković | S. Rustgi | Sundip Kumar | D. Saini | V. Vikas | I. Djalović | Sofora Jan | Sandeep Kumar | M. Tahir | F. Jan | Narendra Singh Dhaka
[1] Z. Kang,et al. High density mapping of wheat stripe rust resistance gene QYrXN3517-1BL using QTL mapping, BSE-Seq and candidate gene analysis , 2023, Theoretical and Applied Genetics.
[2] Lei Wu,et al. Identification of adult plant stripe rust resistance QTLs in Jiangsu wheat varieties Ningmai 9 and Yangmai 158 , 2023, Plant Pathology.
[3] K. Siddique,et al. Multi-omics assisted breeding for biotic stress resistance in soybean , 2023, Molecular Biology Reports.
[4] P. Kaushik,et al. Revealing the Genetic Architecture of Yield-Related and Quality Traits in Indian Mustard [Brassica juncea (L.) Czern. and Coss.] Using Meta-QTL Analysis , 2022, Agronomy.
[5] H. Sharma,et al. WheatQTLdb V2.0: a supplement to the database for wheat QTL , 2022, Molecular Breeding.
[6] Jin Cai,et al. Mapping QTL for Adult-Plant Resistance to Stripe Rust in a Chinese Wheat Landrace , 2022, International journal of molecular sciences.
[7] Arun Kumar Pandey,et al. Delineating meta-quantitative trait loci for anthracnose resistance in common bean (Phaseolus vulgaris L.) , 2022, Frontiers in Plant Science.
[8] Z. Kang,et al. Genome-Wide QTL Mapping for Stripe Rust Resistance in Winter Wheat Pindong 34 Using a 90K SNP Array , 2022, Frontiers in Plant Science.
[9] N. Pal,et al. Consensus genomic regions associated with multiple abiotic stress tolerance in wheat and implications for wheat breeding , 2022, Scientific Reports.
[10] K. Nazari,et al. QTL Mapping of Adult Plant Resistance to Stripe Rust in a Doubled Haploid Wheat Population , 2022, Frontiers in Genetics.
[11] Pradeep Kumar,et al. Unravelling consensus genomic regions associated with quality traits in wheat using meta-analysis of quantitative trait loci , 2022, Planta.
[12] H. Ariyarathna,et al. Meta-QTL analysis identified stable quantitative trait loci (QTLs) and associated resistance gene analogues in rice , 2022, Journal of the National Science Foundation of Sri Lanka.
[13] H. Randhawa,et al. QTL mapping for adult plant field resistance to stripe rust in the AAC Cameron/P2711 spring wheat population , 2022, Crop Science.
[14] H. Balyan,et al. Meta-QTLs for multiple disease resistance involving three rusts in common wheat (Triticum aestivum L.) , 2022, Theoretical and Applied Genetics.
[15] P. Srivastava,et al. Meta-QTLs, ortho-meta-QTLs and candidate genes for grain yield and associated traits in wheat (Triticum aestivum L.) , 2022, Theoretical and Applied Genetics.
[16] Hao Li,et al. Mapping a stable adult-plant stripe rust resistance QTL on chromosome 6AL in Chinese wheat landrace Yibinzhuermai , 2022, The Crop Journal.
[17] P. Gupta,et al. Meta-analysis reveals consensus genomic regions associated with multiple disease resistance in wheat (Triticum aestivum L.) , 2021, Molecular Breeding.
[18] Amit Kumar,et al. Comprehensive evaluation of mapping complex traits in wheat using genome-wide association studies , 2021, Molecular Breeding.
[19] N. Sandhu,et al. Meta-QTL Analysis in Rice and Cross-Genome Talk of the Genomic Regions Controlling Nitrogen Use Efficiency in Cereal Crops Revealing Phylogenetic Relationship , 2021, Frontiers in Genetics.
[20] Yansheng Li,et al. Novel QTL and Meta-QTL Mapping for Major Quality Traits in Soybean , 2021, Frontiers in Plant Science.
[21] Sundip Kumar,et al. Meta-QTLs, ortho-MQTLs and candidate genes for the traits contributing to salinity stress tolerance in common wheat (Triticum aestivum L.) , 2021, Physiology and Molecular Biology of Plants.
[22] Rajiv Sharma,et al. Wheat genetic loci conferring resistance to stripe rust in the face of genetically diverse races of the fungus Puccinia striiformis f. sp. tritici , 2021, TAG. Theoretical and applied genetics. Theoretische und angewandte Genetik.
[23] Kuldeep Kumar,et al. Meta-QTLs and candidate genes for stripe rust resistance in wheat , 2021, Scientific Reports.
[24] Changfa Wang,et al. Combined linkage and association mapping reveals two major QTL for stripe rust adult plant resistance in Shaanmai 155 and their haplotype variation in common wheat germplasm , 2021, The Crop Journal.
[25] P. Gupta,et al. Meta-QTLs, ortho-MQTLs, and candidate genes for thermotolerance in wheat (Triticum aestivum L.) , 2021, Molecular Breeding.
[26] P. Gupta,et al. Meta-QTLs, ortho-MQTLs and candidate genes for nitrogen use efficiency and root system architecture in bread wheat (Triticum aestivum L.) , 2021, Physiology and Molecular Biology of Plants.
[27] Xianming Chen,et al. The RLK protein TaCRK10 activates wheat high-temperature seedling-plant resistance to stripe rust through interacting with TaH2A.1. , 2021, The Plant journal : for cell and molecular biology.
[28] D. Bhatia,et al. Eighty years of gene-for-gene relationship and its applications in identification and utilization of R genes , 2021, Journal of genetics.
[29] Shaukat Ali,et al. Genome-wide association analysis permits characterization of Stagonospora nodorum blotch (SNB) resistance in hard winter wheat , 2021, Scientific Reports.
[30] J. M. Soriano,et al. Unravelling consensus genomic regions conferring leaf rust resistance in wheat via meta-QTL analysis , 2021, bioRxiv.
[31] Liang Chen,et al. Large-scale integration of meta-QTL and genome-wide association study discovers the genomic regions and candidate genes for yield and yield-related traits in bread wheat , 2021, Theoretical and Applied Genetics.
[32] C. Sansaloni,et al. Genome-wide association analysis of Mexican bread wheat landraces for resistance to yellow and stem rust , 2021, PloS one.
[33] Li Tao,et al. Integration of meta-QTL discovery with omics: Towards a molecular breeding platform for improving wheat resistance to Fusarium head blight , 2020 .
[34] Amit Kumar Singh,et al. Identification of QTLs/Defense Genes Effective at Seedling Stage Against Prevailing Races of Wheat Stripe Rust in India , 2020, Frontiers in Genetics.
[35] K. Nadarajah,et al. A Meta-Analysis of Quantitative Trait Loci Associated with Multiple Disease Resistance in Rice (Oryza sativa L.) , 2020, Plants.
[36] J. Fiedler,et al. Meta-QTL analysis of tan spot resistance in wheat , 2020, Theoretical and Applied Genetics.
[37] D. Tang,et al. An ankyrin-repeat and WRKY-domain-containing immune receptor confers stripe rust resistance in wheat , 2020, Nature Communications.
[38] Yue Zhao,et al. QTL Mapping of Kernel Traits and Validation of a Major QTL for Kernel Length-Width Ratio Using SNP and Bulked Segregant Analysis in Wheat , 2020, Scientific Reports.
[39] G. Dreyfuss,et al. U1 snRNP regulates cancer cell migration and invasion , 2019, bioRxiv.
[40] M. Luo,et al. An ancestral NB-LRR with duplicated 3′UTRs confers stripe rust resistance in wheat and barley , 2019, Nature Communications.
[41] Zujun Yang,et al. Identification of QTLs for Stripe Rust Resistance in a Recombinant Inbred Line Population , 2019, International journal of molecular sciences.
[42] C. Pegoraro,et al. Meta-Analysis of the QTLome of Fusarium Head Blight Resistance in Bread Wheat: Refining the Current Puzzle , 2019, Front. Plant Sci..
[43] Fuguang Li,et al. GhABP19, a Novel Germin-Like Protein From Gossypium hirsutum, Plays an Important Role in the Regulation of Resistance to Verticillium and Fusarium Wilt Pathogens , 2019, Front. Plant Sci..
[44] Xiaoyu Wang,et al. Wheat WD40-repeat protein TaHOS15 functions in a histone deacetylase complex to fine-tune defense responses to Blumeria graminis f.sp. tritici , 2018, Journal of experimental botany.
[45] M. Kunitski,et al. Double-slit photoelectron interference in strong-field ionization of the neon dimer , 2018, Nature Communications.
[46] C. Bruno,et al. Meta-Analysis of QTL Studies for Resistance to Fungi and Viruses in Maize , 2019, Crop Science.
[47] Yu Li,et al. Meta-QTL analysis and identification of candidate genes related to root traits in maize , 2018, Euphytica.
[48] G. Thapa,et al. A wheat cytochrome P450 enhances both resistance to deoxynivalenol and grain yield , 2018, PloS one.
[49] L. Paulin,et al. Cloning of the wheat Yr15 resistance gene sheds light on the plant tandem kinase-pseudokinase family , 2018, Nature Communications.
[50] B. Steuernagel,et al. BED-domain-containing immune receptors confer diverse resistance spectra to yellow rust , 2018, Nature Plants.
[51] N. Provart,et al. The transcriptional landscape of polyploid wheat , 2018, Science.
[52] M. Blair,et al. Meta-QTL analysis of seed iron and zinc concentration and content in common bean (Phaseolus vulgaris L.) , 2018, Theoretical and Applied Genetics.
[53] R. Selvakumar,et al. Seedling and adult‐plant stage resistance of a world collection of barley genotypes to stripe rust , 2018 .
[54] Jindong Liu,et al. A High-Density Consensus Map of Common Wheat Integrating Four Mapping Populations Scanned by the 90K SNP Array , 2017, Front. Plant Sci..
[55] N. Zhang,et al. Utilization of a Wheat660K SNP array-derived high-density genetic map for high-resolution mapping of a major QTL for kernel number , 2017, Scientific Reports.
[56] Mei-nan Wang,et al. Stripe Rust Resistance , 2017 .
[57] Tyr Wiesner-Hanks,et al. Multiple Disease Resistance in Plants. , 2016, Annual review of phytopathology.
[58] D. Saunders,et al. The host-pathogen interaction between wheat and yellow rust induces temporally coordinated waves of gene expression , 2016, BMC Genomics.
[59] E. Buckler,et al. Joint‐linkage mapping and GWAS reveal extensive genetic loci that regulate male inflorescence size in maize , 2016, Plant biotechnology journal.
[60] R. Park. Wheat: Biotrophic Pathogen Resistance , 2016 .
[61] Jing Xu,et al. A comprehensive meta-analysis of plant morphology, yield, stay-green, and virus disease resistance QTL in maize (Zea mays L.) , 2016, Planta.
[62] C. Royo,et al. Dissecting the Genetic Architecture of Leaf Rust Resistance in Wheat by QTL Meta-Analysis. , 2015, Phytopathology.
[63] J. Patrick,et al. A recently evolved hexose transporter variant confers resistance to multiple pathogens in wheat , 2015, Nature Genetics.
[64] Hans-Joachim Braun,et al. Research investment implications of shifts in the global geography of wheat stripe rust , 2015, Nature Plants.
[65] S. Salvi,et al. The crop QTLome comes of age. , 2015, Current opinion in biotechnology.
[66] A. Laroche,et al. The stripe rust resistance gene Yr10 encodes an evolutionary-conserved and unique CC-NBS-LRR sequence in wheat. , 2014, Molecular plant.
[67] Min Liu,et al. Large-scale transcriptome comparison reveals distinct gene activations in wheat responding to stripe rust and powdery mildew , 2014, BMC Genomics.
[68] Christophe Plomion,et al. LPmerge: an R package for merging genetic maps by linear programming , 2014, Bioinform..
[69] Long-Xi Yu,et al. A consensus map for Ug99 stem rust resistance loci in wheat , 2014, Theoretical and Applied Genetics.
[70] R. Papa,et al. Genetic basis of qualitative and quantitative resistance to powdery mildew in wheat: from consensus regions to candidate genes , 2013, BMC Genomics.
[71] S. S. Kanwar,et al. Comparative Analysis of Zinc Finger Proteins Involved in Plant Disease Resistance , 2012, PloS one.
[72] H. Hirt,et al. Role of AGC kinases in plant growth and stress responses , 2012, Cellular and Molecular Life Sciences.
[73] Olivier Sosnowski,et al. BioMercator V3: an upgrade of genetic map compilation and quantitative trait loci meta-analysis algorithms , 2012, Bioinform..
[74] P. Schweizer,et al. Large-scale data integration reveals colocalization of gene functional groups with meta-QTL for multiple disease resistance in barley. , 2011, Molecular plant-microbe interactions : MPMI.
[75] F. Tardieu,et al. A Common Genetic Determinism for Sensitivities to Soil Water Deficit and Evaporative Demand: Meta-Analysis of Quantitative Trait Loci and Introgression Lines of Maize1[W][OA] , 2011, Plant Physiology.
[76] P. Cheng,et al. Molecular mapping of a gene for stripe rust resistance in spring wheat cultivar IDO377s , 2010, Theoretical and Applied Genetics.
[77] Muhammad Ali Amer,et al. Genome-wide association study of 107 phenotypes in a common set of Arabidopsis thaliana inbred lines , 2010, Nature.
[78] Chuanxiao Xie,et al. Meta-analysis of constitutive and adaptive QTL for drought tolerance in maize , 2010, Euphytica.
[79] C. Griffey,et al. Meta-analysis of QTL associated with Fusarium head blight resistance in wheat. , 2009 .
[80] R. McIntosh,et al. Wheat stripe rust resistance genes Yr5 and Yr7 are allelic , 2009, Theoretical and Applied Genetics.
[81] B. Courtois,et al. Rice Root Genetic Architecture: Meta-analysis from a Drought QTL Database , 2009, Rice.
[82] D. Laurie,et al. Meta-QTL analysis of the genetic control of ear emergence in elite European winter wheat germplasm , 2009, Theoretical and Applied Genetics.
[83] T. Miedaner,et al. Revealing the genetic architecture of FHB resistance in hexaploid wheat (Triticum aestivum L.) by QTL meta-analysis , 2009, Molecular Breeding.
[84] H. Bariana,et al. The successful application of a marker-assisted wheat breeding strategy , 2007, Molecular Breeding.
[85] M. I. Haque,et al. ASSESSMENT OF YIELD LOSSES CAUSED BY PUCCINIA STRIIFORMIS TRIGGERING STRIPE RUST IN THE MOST COMMON WHEAT VARIETIES , 2007 .
[86] Alain Charcosset,et al. MetaQTL: a package of new computational methods for the meta-analysis of QTL mapping experiments , 2007, BMC Bioinformatics.
[87] M. Sorrells,et al. Association Analysis as a Strategy for Improvement of Quantitative Traits in Plants , 2006 .
[88] H. Nguyen,et al. QTLs Associated with Resistance to Soybean Cyst Nematode in Soybean: Meta-Analysis of QTL Locations , 2006 .
[89] C. Gachon,et al. Pathogen-Responsive Expression of Glycosyltransferase Genes UGT73B3 and UGT73B5 Is Necessary for Resistance to Pseudomonas syringae pv tomato in Arabidopsis[W] , 2005, Plant Physiology.
[90] Xianming Chen,et al. Epidemiology and control of stripe rust [Puccinia striiformis f. sp. tritici] on wheat , 2005 .
[91] E. Elpidina,et al. Protease Inhibitors in Improvement of Plant Resistance to Pathogens and Insects , 2005, Molecular Biology.
[92] Taiguo Liu,et al. Microsatellite marker of the resistance gene {\sl YrSpP} to wheat stripe rust , 2005 .
[93] P. Cregan,et al. Development and mapping of microsatellite (SSR) markers in wheat , 2005, Theoretical and Applied Genetics.
[94] Alain Charcosset,et al. BioMercator: integrating genetic maps and QTL towards discovery of candidate genes , 2004, Bioinform..
[95] K. Edwards,et al. A high-density microsatellite consensus map for bread wheat (Triticum aestivum L.) , 2004, Theoretical and Applied Genetics.
[96] H. Hirt,et al. OXI1 kinase is necessary for oxidative burst-mediated signalling in Arabidopsis , 2004, Nature.
[97] James K. M. Brown,et al. Aerial Dispersal of Pathogens on the Global and Continental Scales and Its Impact on Plant Disease , 2002, Science.
[98] R. Doerge. Multifactorial genetics: Mapping and analysis of quantitative trait loci in experimental populations , 2002, Nature Reviews Genetics.
[99] A. Börner,et al. The detection and molecular mapping of a major gene for non-specific adult-plant disease resistance against stripe rust (Puccinia striiformis) in wheat , 2000, Theoretical and Applied Genetics.
[100] B. Goffinet,et al. Quantitative trait loci: a meta-analysis. , 2000, Genetics.
[101] F. Salamini,et al. Catalogue of gene symbols for wheat , 1998 .
[102] M. Soller,et al. A Simple Method to Calculate Resolving Power and Confidence Interval of QTL Map Location , 1997, Behavior genetics.
[103] R. Park,et al. Wheat Rusts: An Atlas of Resistance Genes , 1995 .