"MicroRNAs: The Potential Biomarkers in Plant Stress Response"
written by Sonali Bej, Jolly Basak,
published by American Journal of Plant Sciences, Vol.5 No.5, 2014
has been cited by the following article(s):
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[2] Deciphering miRNAs involved in crosstalk between auxin and cold stress in Arabidopsis roots
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[3] Agronomic Crop Responses and Tolerance to Drought Stress
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[4] Role of miRNAs in Abiotic and Biotic Stress Management in Crop Plants
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[5] Molecular characterization of the effect of plant-based elicitor using microRNAs markers in wheat genome
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[6] The maize shoot ionome: its interaction partners, predictive power, and genetic determinants
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[7] Arsenic Tolerance and Signaling Mechanisms in Plants
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[8] MicroRNA-based markers as a tool to monitor the barley (Hordeum vulgare L.) response to soil compaction
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[9] MicroRNA-Based Markers in Plant Genome Response to Abiotic Stress and Their Application in Plant Genotyping
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[10] Gold nanoparticles-based biosensor can detect drought stress in tomato by ultrasensitive and specific determination of miRNAs
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[11] Sequence variation in genes encoding miRNAs/targets and other related approaches for possible use in crop improvement
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[12] Ecologically conditioned imprinting of miRNA-based profiles of Ginkgo biloba L. growing in Slovakia
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[13] Crosstalk Between Plant miRNA and Heavy Metal Toxicity
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[14] Integrating agronomic and genomic approaches for wheat adaptation to to Southern Spain Mediterranean agro-environments
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[15] Plant microRNAs: biogenesis, gene silencing, web-based analysis tools and their use as molecular markers
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[16] The role of MicroRNAs in defense against viral phytopathogens
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[17] RNAi-mediated Resistance against Plant Parasitic Nematodes of Wheat Plants Obtained In Vitro Using Bioregulators of Microbiological Origin
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[18] Identification and characterization of drought responsive microRNAs and their target genes in cardamom (Elettaria cardamomum Maton)
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[19] Plant microRNAs in molecular breeding
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[20] Hydropenia induces expression of drought responsive genes (DRGs) erd1, hat, plD-δ, and zfa in Linum usitatissimum L.
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[21] Biological significance, computational analysis, and applications of plant microRNAs
Acta Physiologiae Plantarum, 2018
[22] MICRORNA: A MYRIAD ROLES IN PLANT TOLERANCE TO VARIOUS ABIOTIC STRESSES
Asian Journal of Research in Chemistry and Pharmaceutical Sciences, 2018
[23] Antioxidant properties of cumin (Bunium persicum Boiss.) extract and its protective role against abiotic stress tested by microRNA markers
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[24] Antioxidant properties of cumin (Bunium persicum Boiss.) extract and its protective role against ultrasound-induced oxidative stress tested by microRNA based …
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[25] Identification of γ-radiation-responsive microRNAs and their target genes in Tradescantia (BNL clone 4430)
Journal of Plant Biology, 2017
[26] Differences and commonalities of plant responses to single and combined stresses
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[27] Function of microRNAs in plant innate immunity
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[28] Abiotic stress responsive miRNA-target network and related markers (SNP, SSR) in Brassica juncea
Frontiers in plant science, 2017
[29] MicroRNAs associated with drought response in the pulse crop common bean (Phaseolus vulgaris L.)
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[30] Discovery of MicroRNAs in Cardamom (Elettaria cardamomum Maton) under Drought Stress
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[31] Abiotic Stress Induced Epigenetic Modifications in Plants: How Much Do We Know?
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[32] Bacillus subtilis affects miRNAs and flavanoids production in Agrobacterium-Tobacco interaction
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[33] Functional Roles of microRNAs in Agronomically Important Plants—Potential as Targets for Crop Improvement and Protection
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[34] miRNAs target databases: developmental methods and target identification techniques with functional annotations
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[35] miRNA-based heavy metal homeostasis and plant growth
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[36] miRNAs: Major modulators for crop growth and development under abiotic stresses
Biotechnology Letters, 2017
[37] Comprehensive analyses of DNA methylation profile, regulation on flowering, and seed mineral accumulation in Arabidopsis thaliana in response to zinc …
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[38] Improving of rice blast resistances in japonica by pyramiding major R genes
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[39] Analysis of miRNA polymorphism during the selected developmental processes of flax
Journal of Central European Agriculture, 2016
[40] The Small-RNA Profiles of Almond (Prunus dulcis Mill.) Reproductive Tissues in Response to Cold Stress
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[41] Using of new microbial biostimulants for obtaining in vitro new lines of Triticum aestivum L. cells resistant to nematode H. avenae
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[42] Drought Stress in Plants: Causes, Consequences, and Tolerance
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[43] Alternative oxidase gene family in Hypericum perforatum L.: characterization and expression at the post-germinative phase
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[44] MicroRNA (miRNA) in food resources and medicinal plant
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[45] Analysis of miRNA polymorphism during the selected developmental processes of flax/Analyza polymorfizmu miRNA vo vybranych vyvojovych stadiach l'anu siateho
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[46] Kuraklık stresinde miRNA cevaplarının domateste araştırılması
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[47] Genotyping of Flax Genetic Resources by Mirna-Based Molecular Markers and Morphology
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[48] POLYMORPHISM OF SPECIFIC miRNAs IN THE CONTEXT OF FLAX (LINUM USITATISSIMUM L.) GENOME ADAPTABILITY TO ABIOTIC STRESS
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[49] Application of the RAPD and miRNA markers in the genotyping of Silybum marianum (L.) Gaertn.
Acta Fytotechnica et Zootechnica, 2015
[50] Basi biochimico-molecolari della tolleranza a condizioni di stress osmo-salino in varietà italiane di riso
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[51] Role of microRNAs in plant innate immunity
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[52] IDENTIFICATION AND FUNCTIONAL CHARACTERIZATION OF NOVEL MmiRNAs FROM FRENCH BEAN UNDER ABIOTIC STRESS CONDITIONS
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[53] An Immense Detail of miRNA Role in Gene Regulation and Their Expression on Functional Bases in Various Crops
[54] Triticeae'da abiyotik stresle ilişkili miRNA'lar