Small RNA sequencing reveals the role of pearl millet miRNAs and their targets in salinity stress responses
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[1] M. Asif,et al. Comparative transcriptome analysis reveals the genes and pathways involved in terminal drought tolerance in pearl millet , 2020, Plant Molecular Biology.
[2] T. Takano,et al. Pearl millet stress-responsive NAC transcription factor PgNAC21 enhances salinity stress tolerance in Arabidopsis. , 2019, Plant physiology and biochemistry : PPB.
[3] Ana Kozomara,et al. miRBase: from microRNA sequences to function , 2018, Nucleic Acids Res..
[4] T. Takano,et al. Comparative de novo transcriptomic profiling of the salinity stress responsiveness in contrasting pearl millet lines , 2018, Environmental and Experimental Botany.
[5] K. Dietz,et al. Salinity and crop yield. , 2018, Plant biology.
[6] L. Tran,et al. Legume genetic resources and transcriptome dynamics under abiotic stress conditions. , 2018, Plant, cell & environment.
[7] X. Dai,et al. psRNATarget: a plant small RNA target analysis server (2017 release) , 2018, Nucleic Acids Res..
[8] K. Xiao,et al. Wheat miRNA TaemiR408 Acts as an Essential Mediator in Plant Tolerance to Pi Deprivation and Salt Stress via Modulating Stress-Associated Physiological Processes , 2018, Front. Plant Sci..
[9] T. Takano,et al. Transcriptomic analysis reveals the differentially expressed genes and pathways involved in drought tolerance in pearl millet [Pennisetum glaucum (L.) R. Br] , 2018, PloS one.
[10] Xiping Wang,et al. Overexpression of a SBP-Box Gene (VpSBP16) from Chinese Wild Vitis Species in Arabidopsis Improves Salinity and Drought Stress Tolerance , 2018, International journal of molecular sciences.
[11] D. Qi,et al. MADS-box family genes in sheepgrass and their involvement in abiotic stress responses , 2018, BMC plant biology.
[12] A. Rai,et al. Transcriptomic signature of drought response in pearl millet (Pennisetum glaucum (L.) and development of web-genomic resources , 2018, Scientific Reports.
[13] O. P. Yadav,et al. Pearl millet genome sequence provides a resource to improve agronomic traits in arid environments , 2017, Nature Biotechnology.
[14] Agnieszka Bielach,et al. Plants under Stress: Involvement of Auxin and Cytokinin , 2017, International journal of molecular sciences.
[15] Baohua Wang,et al. Identification of Salt Tolerance-related microRNAs and Their Targets in Maize (Zea mays L.) Using High-throughput Sequencing and Degradome Analysis , 2017, Front. Plant Sci..
[16] R. Machado,et al. Soil Salinity: Effect on Vegetable Crop Growth. Management Practices to Prevent and Mitigate Soil Salinization , 2017 .
[17] Yue Li,et al. Identification of Drought-Responsive MicroRNAs from Roots and Leaves of Alfalfa by High-Throughput Sequencing , 2017, Genes.
[18] Yuhai Cui,et al. Conservation and diversification of the miR166 family in soybean and potential roles of newly identified miR166s , 2017, BMC Plant Biology.
[19] Zongli Hu,et al. Solanum lycopersicum agamous-like MADS-box protein AGL15-like gene, SlMBP11, confers salt stress tolerance , 2016, Molecular Breeding.
[20] Gang Wu,et al. Developmental Functions of miR156-Regulated SQUAMOSA PROMOTER BINDING PROTEIN-LIKE (SPL) Genes in Arabidopsis thaliana , 2016, PLoS genetics.
[21] Woe-Yeon Kim,et al. A New Insight of Salt Stress Signaling in Plant , 2016, Molecules and cells.
[22] Sumei Chen,et al. Transcriptome-wide identification and expression analysis of chrysanthemum SBP-like transcription factors. , 2016, Plant physiology and biochemistry : PPB.
[23] C. Lata,et al. Selection of suitable reference genes for assessing gene expression in pearl millet under different abiotic stresses and their combinations , 2016, Scientific Reports.
[24] M. Prasad,et al. Dehydration-responsive miRNAs in foxtail millet: genome-wide identification, characterization and expression profiling , 2016, Planta.
[25] Jitender Singh,et al. Molecular cloning and characterization of salt inducible dehydrin gene from the C4 plant Pennisetum glaucum , 2015 .
[26] C. Meng,et al. Transcriptomic analysis reveals importance of ROS and phytohormones in response to short-term salinity stress in Populus tomentosa , 2015, Front. Plant Sci..
[27] J. Schroeder,et al. HKT transporters mediate salt stress resistance in plants: from structure and function to the field. , 2015, Current opinion in biotechnology.
[28] R. Kumar,et al. Soil salinity: A serious environmental issue and plant growth promoting bacteria as one of the tools for its alleviation , 2014, Saudi journal of biological sciences.
[29] Manzoor Qadir,et al. Economics of salt-induced land degradation and restoration , 2014 .
[30] Bingru Huang,et al. Mechanism of Salinity Tolerance in Plants: Physiological, Biochemical, and Molecular Characterization , 2014, International journal of genomics.
[31] Lihuang Zhu,et al. Overexpression of microRNA319 impacts leaf morphogenesis and leads to enhanced cold tolerance in rice (Oryza sativa L.). , 2013, Plant, cell & environment.
[32] Patrick Xuechun Zhao,et al. PlantTFcat: an online plant transcription factor and transcriptional regulator categorization and analysis tool , 2013, BMC Bioinformatics.
[33] V. Vadez,et al. II.1.5 Phenotyping pearl millet for adaptation to drought , 2012, Front. Physio..
[34] K. Masmoudi,et al. Ion Transporters and Abiotic Stress Tolerance in Plants , 2012, ISRN molecular biology.
[35] R. Sunkar,et al. Functions of microRNAs in plant stress responses. , 2012, Trends in plant science.
[36] P. S. Reddy,et al. Cloning and molecular characterization of a gene encoding late embryogenesis abundant protein from Pennisetum glaucum: protection against abiotic stresses , 2012, Molecular Biology Reports.
[37] J. Duan,et al. OsTIR1 and OsAFB2 Downregulation via OsmiR393 Overexpression Leads to More Tillers, Early Flowering and Less Tolerance to Salt and Drought in Rice , 2012, PloS one.
[38] Sebastian D. Mackowiak,et al. Identification of Novel and Known miRNAs in Deep‐Sequencing Data with miRDeep2 , 2011, Current protocols in bioinformatics.
[39] Jae-Hoon Jung,et al. Auxin modulation of salt stress signaling in Arabidopsis seed germination , 2011, Plant signaling & behavior.
[40] Z. Ye,et al. Over-expression of microRNA169 confers enhanced drought tolerance to tomato , 2011, Biotechnology Letters.
[41] Pradeep K. Agarwal,et al. Overexpression of PgDREB2A transcription factor enhances abiotic stress tolerance and activates downstream stress-responsive genes , 2010, Molecular Biology Reports.
[42] Clayton T Larue,et al. Genetic interactions between the miRNA164-CUC2 regulatory module and BREVIPEDICELLUS in Arabidopsis developmental patterning , 2009, Plant signaling & behavior.
[43] R. Takahashi,et al. Cloning of a high-affinity K+ transporter gene PutHKT2;1 from Puccinellia tenuiflora and its functional comparison with OsHKT2;1 from rice in yeast and Arabidopsis , 2009, Journal of experimental botany.
[44] O. Voinnet. Origin, Biogenesis, and Activity of Plant MicroRNAs , 2009, Cell.
[45] D. Verma,et al. Functional validation of a novel isoform of Na+/H+ antiporter from Pennisetum glaucum for enhancing salinity tolerance in rice , 2007, Journal of Biosciences.
[46] P. Rouzé,et al. The small RNA world of plants. , 2006, The New phytologist.
[47] D. Verma,et al. Structural and functional analysis of a salt stress inducible gene encoding voltage dependent anion channel (VDAC) from pearl millet (Pennisetum glaucum). , 2006, Plant physiology and biochemistry : PPB.
[48] 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.
[49] S. Y. Teh. CLIMATE CHANGE AND SOIL SALINIZATION : IMPACT ON AGRICULTURE , WATER AND FOOD SECURITY , 2016 .