Transcriptome Profiling of Wheat Inflorescence Development from Spikelet Initiation to Floral Patterning Identified Stage-Specific Regulatory Genes1[OPEN]
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L. Mao | Aili Li | Kai Chen | Jiajie Wu | Lichao Zhang | X. Kong | Jiantao Guan | Shuaifeng Geng | Meiling Jia | Gaoyuan Song | Nan Feng | Dehua Huang | Jun Liu | Long Mao
[1] Leah Clissold,et al. Uncovering hidden variation in polyploid wheat , 2017, Proceedings of the National Academy of Sciences.
[2] Xiangdong Fu,et al. SQUAMOSA Promoter Binding Protein-like Transcription Factors: Targets for Improving Cereal Grain Yield. , 2016, Molecular plant.
[3] Michela Osnato,et al. Gene expression profiling of reproductive meristem types in early rice inflorescences by laser microdissection. , 2016, The Plant Journal.
[4] Cai-guo Xu,et al. Coordinated regulation of vegetative and reproductive branching in rice , 2015, Proceedings of the National Academy of Sciences.
[5] P. Benfey,et al. MicroRNA miR396 Regulates the Switch between Stem Cells and Transit-Amplifying Cells in Arabidopsis Roots , 2015, Plant Cell.
[6] V. Walbot,et al. Evolution, functions, and mysteries of plant ARGONAUTE proteins. , 2015, Current opinion in plant biology.
[7] A. Pankin,et al. Global Transcriptome Profiling of Developing Leaf and Shoot Apices Reveals Distinct Genetic and Environmental Control of Floral Transition and Inflorescence Development in Barley[OPEN] , 2015, The Plant Cell.
[8] T. Schnurbusch,et al. Variation of floret fertility in hexaploid wheat revealed by tiller removal , 2015, Journal of experimental botany.
[9] S. Jackson,et al. Floral induction and flower formation--the role and potential applications of miRNAs. , 2015, Plant biotechnology journal.
[10] Guiliang Tang,et al. To bloom or not to bloom: role of microRNAs in plant flowering. , 2015, Molecular plant.
[11] B. Cullis,et al. Ppd-1 is a key regulator of inflorescence architecture and paired spikelet development in wheat , 2015, Nature Plants.
[12] Y. Orlov,et al. FRIZZY PANICLE Drives Supernumerary Spikelets in Bread Wheat1 , 2014, Plant Physiology.
[13] J. Palatnik,et al. Repression of cell proliferation by miR319-regulated TCP4. , 2014, Molecular plant.
[14] J. Batley,et al. A chromosome-based draft sequence of the hexaploid bread wheat (Triticum aestivum) genome , 2014, Science.
[15] Hans A. Vasquez-Gross,et al. Efficient Genome-Wide Detection and Cataloging of EMS-Induced Mutations Using Exome Capture and Next-Generation Sequencing[C][W][OPEN] , 2014, Plant Cell.
[16] Doreen Ware,et al. Regulatory modules controlling maize inflorescence architecture , 2014, Genome research.
[17] Hao Yu,et al. New insights into the regulation of inflorescence architecture. , 2014, Trends in plant science.
[18] S. Jackson,et al. The role of microRNAs in the control of flowering time. , 2014, Journal of experimental botany.
[19] G. Pan,et al. Identification of miRNAs and their target genes in developing maize ears by combined small RNA and degradome sequencing , 2014, BMC Genomics.
[20] Ana Kozomara,et al. miRBase: annotating high confidence microRNAs using deep sequencing data , 2013, Nucleic Acids Res..
[21] Yan Luo,et al. Evolutionary conservation of microRNA regulatory programs in plant flower development. , 2013, Developmental biology.
[22] Xuemei Chen,et al. Biogenesis, Turnover, and Mode of Action of Plant MicroRNAs[OPEN] , 2013, Plant Cell.
[23] P. Rudall,et al. Early inflorescence development in the grasses (Poaceae) , 2013, Front. Plant Sci..
[24] Cole Trapnell,et al. TopHat2: accurate alignment of transcriptomes in the presence of insertions, deletions and gene fusions , 2013, Genome Biology.
[25] G. Theißen,et al. Functional Conservation of MIKC*-Type MADS Box Genes in Arabidopsis and Rice Pollen Maturation[C][W] , 2013, Plant Cell.
[26] Hao Yu,et al. A conserved genetic pathway determines inflorescence architecture in Arabidopsis and rice. , 2013, Developmental cell.
[27] Wenlong Yang,et al. Draft genome of the wheat A-genome progenitor Triticum urartu , 2013, Nature.
[28] Yadan Luo,et al. Aegilops tauschii draft genome sequence reveals a gene repertoire for wheat adaptation , 2013, Nature.
[29] D. Weigel,et al. Coordination of Flower Maturation by a Regulatory Circuit of Three MicroRNAs , 2013, PLoS genetics.
[30] D. Jackson,et al. Grass meristems II: inflorescence architecture, flower development and meristem fate. , 2013, Plant & cell physiology.
[31] Yoshiaki Nagamura,et al. TAWAWA1, a regulator of rice inflorescence architecture, functions through the suppression of meristem phase transition , 2012, Proceedings of the National Academy of Sciences.
[32] Xiuren Zhang,et al. Argonautes compete for miR165/166 to regulate shoot apical meristem development. , 2012, Current opinion in plant biology.
[33] Z. Ni,et al. TamiR159 Directed Wheat TaGAMYB Cleavage and Its Involvement in Anther Development and Heat Response , 2012, PloS one.
[34] Kotaro Miura,et al. Control of tiller growth of rice by OsSPL14 and Strigolactones, which work in two independent pathways. , 2012, Plant & cell physiology.
[35] H. Yoshida,et al. Inflorescence Meristem Identity in Rice Is Specified by Overlapping Functions of Three AP1/FUL-Like MADS Box Genes and PAP2, a SEPALLATA MADS Box Gene[C][W] , 2012, Plant Cell.
[36] T. Schnurbusch,et al. A genetic playground for enhancing grain number in cereals. , 2012, Trends in plant science.
[37] G. An,et al. Two AP2 family genes, supernumerary bract (SNB) and Osindeterminate spikelet 1 (OsIDS1), synergistically control inflorescence architecture and floral meristem establishment in rice. , 2012, The Plant journal : for cell and molecular biology.
[38] Cécile Huneau,et al. Duplication and partitioning in evolution and function of homoeologous Q loci governing domestication characters in polyploid wheat , 2011, Proceedings of the National Academy of Sciences.
[39] Hongliang Zhu,et al. Arabidopsis Argonaute10 Specifically Sequesters miR166/165 to Regulate Shoot Apical Meristem Development , 2011, Cell.
[40] T. Komatsuda,et al. The Domestication Syndrome Genes Responsible for the Major Changes in Plant Form in the Triticeae Crops , 2011, Plant & cell physiology.
[41] G. Angenent,et al. MADS: the missing link between identity and growth? , 2011, Trends in plant science.
[42] Ana Kozomara,et al. miRBase: integrating microRNA annotation and deep-sequencing data , 2010, Nucleic Acids Res..
[43] Hitoshi Sakakibara,et al. WAVY LEAF1, an Ortholog of Arabidopsis HEN1, Regulates Shoot Development by Maintaining MicroRNA and Trans-Acting Small Interfering RNA Accumulation in Rice1[C][W] , 2010, Plant Physiology.
[44] Makoto Matsuoka,et al. OsSPL14 promotes panicle branching and higher grain productivity in rice , 2010, Nature Genetics.
[45] Qian Qian,et al. Regulation of OsSPL14 by OsmiR156 defines ideal plant architecture in rice , 2010, Nature Genetics.
[46] Zhou Du,et al. agriGO: a GO analysis toolkit for the agricultural community , 2010, Nucleic Acids Res..
[47] H. Kong,et al. The SEPALLATA-Like Gene OsMADS34 Is Required for Rice Inflorescence and Spikelet Development1[C][W][OA] , 2010, Plant Physiology.
[48] W. Huber,et al. which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited. MAnorm: a robust model for quantitative comparison of ChIP-Seq data sets , 2011 .
[49] G. Theißen,et al. Functional conservation and diversification of class E floral homeotic genes in rice (Oryza sativa). , 2010, The Plant journal : for cell and molecular biology.
[50] T. Komatsuda,et al. Cleistogamous flowering in barley arises from the suppression of microRNA-guided HvAP2 mRNA cleavage , 2009, Proceedings of the National Academy of Sciences.
[51] A. Nag,et al. miR319a targeting of TCP4 is critical for petal growth and development in Arabidopsis , 2009, Proceedings of the National Academy of Sciences.
[52] Hirohiko Hirochika,et al. PANICLE PHYTOMER2 (PAP2), encoding a SEPALLATA subfamily MADS-box protein, positively controls spikelet meristem identity in rice , 2009, Plant & cell physiology.
[53] Y. Qi,et al. Rice MicroRNA Effector Complexes and Targets[C][W] , 2009, The Plant Cell Online.
[54] Hirohiko Hirochika,et al. MOSAIC FLORAL ORGANS1, an AGL6-Like MADS Box Gene, Regulates Floral Organ Identity and Meristem Fate in Rice[W] , 2009, The Plant Cell Online.
[55] J. Dubcovsky,et al. A modified TILLING approach to detect induced mutations in tetraploid and hexaploid wheat , 2009, BMC Plant Biology.
[56] S. Takumi,et al. Heterochronic development of the floret meristem determines grain number per spikelet in diploid, tetraploid and hexaploid wheats. , 2009, Annals of botany.
[57] Hai Huang,et al. The ARGONAUTE10 gene modulates shoot apical meristem maintenance and establishment of leaf polarity by repressing miR165/166 in Arabidopsis. , 2009, The Plant journal : for cell and molecular biology.
[58] Cole Trapnell,et al. Ultrafast and memory-efficient alignment of short DNA sequences to the human genome , 2009, Genome Biology.
[59] S. Hake,et al. Floral meristem initiation and meristem cell fate are regulated by the maize AP2 genes ids1 and sid1 , 2008, Development.
[60] B. Williams,et al. Mapping and quantifying mammalian transcriptomes by RNA-Seq , 2008, Nature Methods.
[61] Kalika Prasad,et al. Distinct regulatory role for RFL, the rice LFY homolog, in determining flowering time and plant architecture , 2008, Proceedings of the National Academy of Sciences.
[62] Uwe Scholz,et al. Barley Grain Maturation and Germination: Metabolic Pathway and Regulatory Network Commonalities and Differences Highlighted by New MapMan/PageMan Profiling Tools1[W][OA] , 2008, Plant Physiology.
[63] S. Hake,et al. The maize tasselseed4 microRNA controls sex determination and meristem cell fate by targeting Tasselseed6/indeterminate spikelet1 , 2007, Nature Genetics.
[64] M. Matsuoka,et al. The small interfering RNA production pathway is required for shoot meristem initiation in rice , 2007, Proceedings of the National Academy of Sciences.
[65] Ashutosh Kumar Singh,et al. MADS-box gene family in rice: genome-wide identification, organization and expression profiling during reproductive development and stress , 2007, BMC Genomics.
[66] G. An,et al. The rice heterochronic gene SUPERNUMERARY BRACT regulates the transition from spikelet meristem to floral meristem. , 2006, The Plant journal : for cell and molecular biology.
[67] Gang Wu,et al. Temporal regulation of shoot development in Arabidopsis thaliana by miR156 and its target SPL3 , 2006, Development.
[68] L. Xiong,et al. Genomic Organization, Differential Expression, and Interaction of SQUAMOSA Promoter-Binding-Like Transcription Factors and microRNA156 in Rice1[W] , 2006, Plant Physiology.
[69] J. Kyozuka,et al. Genome-wide analysis of spatial and temporal gene expression in rice panicle development. , 2006, The Plant journal : for cell and molecular biology.
[70] B. Gill,et al. Molecular Characterization of the Major Wheat Domestication Gene Q , 2006, Genetics.
[71] G. An,et al. Functional Diversification of the Two C-Class MADS Box Genes OSMADS3 and OSMADS58 in Oryza sativa[W][OA] , 2005, The Plant Cell Online.
[72] K. Livak,et al. Real-time quantification of microRNAs by stem–loop RT–PCR , 2005, Nucleic acids research.
[73] Q. Qian,et al. Cytokinin Oxidase Regulates Rice Grain Production , 2005, Science.
[74] Y. Nagato,et al. ABERRANT PANICLE ORGANIZATION 1 temporally regulates meristem identity in rice. , 2005, Developmental biology.
[75] Javier F. Palatnik,et al. Specific effects of microRNAs on the plant transcriptome. , 2005, Developmental cell.
[76] F. Gubler,et al. The Arabidopsis GAMYB-Like Genes, MYB33 and MYB65, Are MicroRNA-Regulated Genes That Redundantly Facilitate Anther Development , 2005, The Plant Cell Online.
[77] Makoto Sato,et al. The gene FLORAL ORGAN NUMBER1 regulates floral meristem size in rice and encodes a leucine-rich repeat receptor kinase orthologous to Arabidopsis CLAVATA1 , 2004, Development.
[78] G. An,et al. Functional Analyses of the ¯owering Time Gene Osmads50, the Putative Suppressor of Overexpression of Co 1/ Agamous-like 20 (soc1/agl20) Ortholog in Rice , 1976 .
[79] Xuemei Chen,et al. A MicroRNA as a Translational Repressor of APETALA2 in Arabidopsis Flower Development , 2004, Science.
[80] K. Shimamoto,et al. FRIZZY PANICLE is required to prevent the formation of axillary meristems and to establish floral meristem identity in rice spikelets , 2003, Development.
[81] Y. Nagato,et al. The SHOOTLESS2 and SHOOTLESS1 genes are involved in both initiation and maintenance of the shoot apical meristem through regulating the number of indeterminate cells. , 2003, Genetics.
[82] Yoshio Sano,et al. SUPERWOMAN1 and DROOPING LEAF genes control floral organ identity in rice , 2003, Development.
[83] S. Hake,et al. The Control of Spikelet Meristem Identity by the branched silkless1 Gene in Maize , 2002, Science.
[84] K. Shimamoto,et al. Overexpression of RCN1 and RCN2, rice TERMINAL FLOWER 1/CENTRORADIALIS homologs, confers delay of phase transition and altered panicle morphology in rice. , 2002, The Plant journal : for cell and molecular biology.
[85] 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.
[86] S. Hake,et al. The control of maize spikelet meristem fate by the APETALA2-like gene indeterminate spikelet1. , 1998, Genes & development.
[87] G. Jürgens,et al. Role of the ZWILLE gene in the regulation of central shoot meristem cell fate during Arabidopsis embryogenesis , 1998, The EMBO journal.
[88] Robert W. Williams,et al. The CLAVATA1 Gene Encodes a Putative Receptor Kinase That Controls Shoot and Floral Meristem Size in Arabidopsis , 1997, Cell.
[89] E. Trione,et al. DEVELOPMENT OF THE YOUNG WHEAT SPIKE: A SEM STUDY OF CHINESE SPRING WHEAT , 1985 .
[90] Boyd Kitchen,et al. Duration and Inheritance of Leaf Initiation, Spike Initiation, and Spike Growth in Barley 1 , 1983 .
[91] A. Smoczyńska,et al. MicroRNA-mediated regulation of flower development in grasses. , 2016, Acta biochimica Polonica.
[92] A. Pankin,et al. Global Transcriptome Pro fi ling of Developing Leaf and Shoot Apices Reveals Distinct Genetic and Environmental Control of Floral Transition and In fl orescence Development in Barley , 2015 .
[93] L. Mao,et al. The SEPALLATA MADS-box protein SLMBP21 forms protein complexes with JOINTLESS and MACROCALYX as a transcription activator for development of the tomato flower abscission zone. , 2014, The Plant journal : for cell and molecular biology.
[94] Masahiko Maekawa,et al. ABERRANT PANICLE ORGANIZATION 2/RFL, the rice ortholog of Arabidopsis LEAFY, suppresses the transition from inflorescence meristem to floral meristem through interaction with APO1. , 2012, The Plant journal : for cell and molecular biology.
[95] C. Helliwell,et al. Regulation of flowering time and floral patterning by miR172. , 2011, Journal of experimental botany.
[96] Pilar Cubas,et al. TCP genes: a family snapshot ten years later. , 2010, Trends in plant science.
[97] G. Chena,et al. Cleistogamous fl owering in barley arises from the suppression of microRNA-guided HvAP 2 mRNA cleavage , 2010 .
[98] Xiaochen Bo,et al. TargetFinder: a software for antisense oligonucleotide target site selection based on MAST and secondary structures of target mRNA. , 2005, Bioinformatics.
[99] P. Wall,et al. A Quantitative Scale of Spike Initial and Pistil Development in Barley and Wheat , 1983 .
[100] M. Appleyard,et al. Relationships between the duration of phases in the pre-anthesis life cycle of spring barley , 1982 .
[101] Lior Pachter,et al. Sequence Analysis , 2020, Definitions.
[102] THE EMBO JOURNAL , 2022 .
[103] K. D. Kasschau,et al. A MicroRNA as a Translational Repressor of APETALA 2 in Arabidopsis Flower Development , 2022 .
[104] Matthias,et al. in the grain of bread , 2022 .
[105] Thomas D. Schmittgen,et al. Analysis of Relative Gene Expression Data Using Real-Time Quantitative PCR and the 2 2 DD C T Method , 2022 .