scholarly article | Q13442814 |
P356 | DOI | 10.1111/PCE.12956 |
P698 | PubMed publication ID | 28346818 |
P50 | author | Nat Kav | Q92032788 |
P2093 | author name string | Urmila Basu | |
Swati Megha | |||
P2860 | cites work | Endogenous siRNA and miRNA targets identified by sequencing of the Arabidopsis degradome | Q24656974 |
MicroRNAs in plants | Q24674274 | ||
Short RNAs can identify new candidate transposable element families in Arabidopsis | Q24678947 | ||
A global survey of gene regulation during cold acclimation in Arabidopsis thaliana. | Q24815020 | ||
Biogenesis, turnover, and mode of action of plant microRNAs | Q26824566 | ||
MicroRNA profiling: approaches and considerations | Q26861675 | ||
Structure of Arabidopsis HYPONASTIC LEAVES1 and Its Molecular Implications for miRNA Processing | Q27661528 | ||
An extensive class of small RNAs in Caenorhabditis elegans | Q27860626 | ||
MicroRNAs modulate hematopoietic lineage differentiation | Q27860661 | ||
Asymmetry in the assembly of the RNAi enzyme complex | Q27860763 | ||
The C. elegans heterochronic gene lin-4 encodes small RNAs with antisense complementarity to lin-14 | Q27860849 | ||
An abundant class of tiny RNAs with probable regulatory roles in Caenorhabditis elegans | Q27860895 | ||
Identification of novel genes coding for small expressed RNAs | Q27860917 | ||
Functional siRNAs and miRNAs Exhibit Strand Bias | Q27861038 | ||
MicroRNAs: genomics, biogenesis, mechanism, and function | Q27861070 | ||
Lateral relocation of auxin efflux regulator PIN3 mediates tropism in Arabidopsis | Q28201333 | ||
CARPEL FACTORY, a Dicer homolog, and HEN1, a novel protein, act in microRNA metabolism in Arabidopsis thaliana | Q28201415 | ||
Prediction of plant microRNA targets | Q28219387 | ||
MicroRNAS and their regulatory roles in plants | Q28237934 | ||
Regulation of microRNA biogenesis | Q28243976 | ||
Computational identification of plant microRNAs and their targets, including a stress-induced miRNA | Q28267244 | ||
Deep sequencing reveals important roles of microRNAs in response to drought and salinity stress in cotton | Q28650258 | ||
miRBase: annotating high confidence microRNAs using deep sequencing data | Q28660701 | ||
Expression of microRNAs and its regulation in plants | Q28749287 | ||
Dual coding of siRNAs and miRNAs by plant transposable elements | Q28754895 | ||
AGO1 homeostasis entails coexpression of MIR168 and AGO1 and preferential stabilization of miR168 by AGO1 | Q28754927 | ||
MicroRNA control of PHABULOSA in leaf development: importance of pairing to the microRNA 5' region | Q28770137 | ||
Regulation of flowering time and floral organ identity by a MicroRNA and its APETALA2-like target genes | Q29617907 | ||
Endogenous and silencing-associated small RNAs in plants | Q29618383 | ||
MicroRNA408 is critical for the HY5-SPL7 gene network that mediates the coordinated response to light and copper | Q30301103 | ||
Barley Cbf3 gene identification, expression pattern, and map location | Q30842975 | ||
Novel and stress-regulated microRNAs and other small RNAs from Arabidopsis | Q31095568 | ||
Expression of Arabidopsis MIRNA genes | Q33220242 | ||
The nuclear dsRNA binding protein HYL1 is required for microRNA accumulation and plant development, but not posttranscriptional transgene silencing | Q33339725 | ||
Global identification of microRNA-target RNA pairs by parallel analysis of RNA ends | Q33341604 | ||
SERRATE is a novel nuclear regulator in primary microRNA processing in Arabidopsis | Q33343016 | ||
Big impacts by small RNAs in plant development | Q33346279 | ||
A protodermal miR394 signal defines a region of stem cell competence in the Arabidopsis shoot meristem | Q33355094 | ||
MiR397b regulates both lignin content and seed number in Arabidopsis via modulating a laccase involved in lignin biosynthesis | Q33358703 | ||
MicroRNAs in Control of Plant Development | Q33361274 | ||
Deep sequencing of Brachypodium small RNAs at the global genome level identifies microRNAs involved in cold stress response | Q33505863 | ||
Transcriptome-wide identification of microRNA targets in rice | Q33536817 | ||
Stars and symbiosis: microRNA- and microRNA*-mediated transcript cleavage involved in arbuscular mycorrhizal symbiosis | Q33899783 | ||
Arabidopsis ARGONAUTE1 is an RNA Slicer that selectively recruits microRNAs and short interfering RNAs | Q33911803 | ||
Blue copper proteins: a comparative analysis of their molecular interaction properties | Q33916858 | ||
Nuclear processing and export of microRNAs in Arabidopsis. | Q33928450 | ||
Arabidopsis thaliana CBF1 encodes an AP2 domain-containing transcriptional activator that binds to the C-repeat/DRE, a cis-acting DNA regulatory element that stimulates transcription in response to low temperature and water deficit | Q35968488 | ||
Identification of chilling-responsive microRNAs and their targets in vegetable soybean (Glycine max L.). | Q36027528 | ||
The Small-RNA Profiles of Almond (Prunus dulcis Mill.) Reproductive Tissues in Response to Cold Stress | Q36037800 | ||
Regulation of miRNA abundance by RNA binding protein TOUGH in Arabidopsis | Q36140690 | ||
Post-transcriptional control of miRNA abundance in Arabidopsis | Q36544762 | ||
The RNA-binding proteins HYL1 and SE promote accurate in vitro processing of pri-miRNA by DCL1. | Q36786900 | ||
Reconstituting plant miRNA biogenesis | Q36786965 | ||
Cold stress regulation of gene expression in plants. | Q36940323 | ||
The regulatory activity of microRNA* species has substantial influence on microRNA and 3' UTR evolution | Q37233219 | ||
Dissecting the interactions of SERRATE with RNA and DICER-LIKE 1 in Arabidopsis microRNA precursor processing | Q37236744 | ||
Proteomics applied on plant abiotic stresses: role of heat shock proteins (HSP). | Q37249064 | ||
Cold shock domain protein 3 regulates freezing tolerance in Arabidopsis thaliana. | Q37358130 | ||
The Arabidopsis thaliana double-stranded RNA binding protein DRB1 directs guide strand selection from microRNA duplexes. | Q37426559 | ||
Methylation protects miRNAs and siRNAs from a 3'-end uridylation activity in Arabidopsis. | Q37452372 | ||
Arabidopsis HEN1: a genetic link between endogenous miRNA controlling development and siRNA controlling transgene silencing and virus resistance | Q37472828 | ||
Proline: a multifunctional amino acid | Q37662931 | ||
MicroRNA-mediated signaling involved in plant root development | Q37688633 | ||
Cold stress and acclimation - what is important for metabolic adjustment? | Q37762596 | ||
Low-temperature-induced transcription factors in grapevine enhance cold tolerance in transgenic Arabidopsis plants | Q43595856 | ||
Stress-responsive microRNAs in Populus. | Q44132256 | ||
Identification and characterization of salt responsive miRNA-SSR markers in rice (Oryza sativa). | Q44208005 | ||
Hv-CBF2A overexpression in barley accelerates COR gene transcript accumulation and acquisition of freezing tolerance during cold acclimation. | Q44336469 | ||
Roles for Arabidopsis CAMTA transcription factors in cold-regulated gene expression and freezing tolerance | Q44806341 | ||
MicroRNA expression profile in common bean (Phaseolus vulgaris) under nutrient deficiency stresses and manganese toxicity | Q45130793 | ||
Roles of CAMTA transcription factors and salicylic acid in configuring the low-temperature transcriptome and freezing tolerance of Arabidopsis | Q45837932 | ||
Identification of cold-inducible microRNAs in plants by transcriptome analysis. | Q45964597 | ||
Metabolic pathways involved in cold acclimation identified by integrated analysis of metabolites and transcripts regulated by DREB1A and DREB2A. | Q45979800 | ||
PINOID kinase regulates root gravitropism through modulation of PIN2-dependent basipetal auxin transport in Arabidopsis | Q46052789 | ||
The miR396b of Poncirus trifoliata Functions in Cold Tolerance by Regulating ACC Oxidase Gene Expression and Modulating Ethylene-Polyamine Homeostasis | Q46517777 | ||
The Arabidopsis cold-responsive transcriptome and its regulation by ICE1. | Q46744011 | ||
Combinatorial interactions of multiple cis-elements regulating the induction of the Arabidopsis XERO2 dehydrin gene by abscisic acid and cold | Q46844363 | ||
Construction and significance analysis of the MicroRNA expression profile of Hemerocallis fulva at low temperature | Q46865207 | ||
Overexpression of microRNA OsmiR397 improves rice yield by increasing grain size and promoting panicle branching | Q47221789 | ||
Low temperature regulation of the Arabidopsis CBF family of AP2 transcriptional activators as an early step in cold-induced COR gene expression | Q47995923 | ||
In vitro assembly of plant RNA-induced silencing complexes facilitated by molecular chaperone HSP90. | Q48064136 | ||
Identification and characterization of new plant microRNAs using EST analysis. | Q48136551 | ||
Arabidopsis miR156 Regulates Tolerance to Recurring Environmental Stress through SPL Transcription Factors | Q48314188 | ||
A common miRNA160-based mechanism regulates ovary patterning, floral organ abscission and lamina outgrowth in tomato | Q50538816 | ||
Overexpression of microRNA319 impacts leaf morphogenesis and leads to enhanced cold tolerance in rice (Oryza sativa L.). | Q50745574 | ||
CDKF;1 and CDKD protein kinases regulate phosphorylation of serine residues in the C-terminal domain of Arabidopsis RNA polymerase II. | Q51788132 | ||
Profiling of cold-stress-responsive miRNAs in rice by microarrays. | Q51911870 | ||
Regulation of miR319 during cold stress in sugarcane. | Q53211462 | ||
Biochemical evidence for translational repression by Arabidopsis microRNAs. | Q53389050 | ||
Changes in mRNA stability associated with cold stress in Arabidopsis cells. | Q54280371 | ||
A set of miRNAs from Brassica napus in response to sulphate deficiency and cadmium stress. | Q54429599 | ||
Properties, Potentials, and Prospects of Antifreeze Proteins | Q56854551 | ||
Structural, functional, and phylogenetic characterization of a large CBF gene family in barley | Q57103661 | ||
Specific Effects of MicroRNAs on the Plant Transcriptome | Q57167516 | ||
Auxin inhibits endocytosis and promotes its own efflux from cells | Q57933141 | ||
Chapter 2 Cold Signalling and Cold Acclimation in Plants | Q58062247 | ||
Reactive oxygen species and antioxidant machinery in abiotic stress tolerance in crop plants | Q37792599 | ||
Cupredoxins--a study of how proteins may evolve to use metals for bioenergetic processes. | Q37831808 | ||
MicroRNA networks and developmental plasticity in plants | Q37861927 | ||
Engineering cold stress tolerance in crop plants. | Q37925485 | ||
Physiological and molecular changes in plants grown at low temperatures | Q38004808 | ||
Mechanistic insight into pentatricopeptide repeat proteins as sequence-specific RNA-binding proteins for organellar RNAs in plants | Q38009252 | ||
A potential role of microRNAs in plant response to metal toxicity | Q38098386 | ||
The diversity, biogenesis, and activities of endogenous silencing small RNAs in Arabidopsis | Q38192033 | ||
Seeing the forest for the trees: annotating small RNA producing genes in plants | Q38196240 | ||
Cold signal transduction and its interplay with phytohormones during cold acclimation | Q38246114 | ||
Identification of cold-inducible downstream genes of the Arabidopsis DREB1A/CBF3 transcriptional factor using two microarray systems | Q38340712 | ||
An overview of pentatricopeptide repeat proteins and their applications | Q38425026 | ||
The micro-RNA72c-APETALA2-1 node as a key regulator of the common bean-Rhizobium etli nitrogen fixation symbiosis. | Q38466141 | ||
The Functions of MicroRNAs: mRNA Decay and Translational Repression | Q38599455 | ||
SERRATE: a new player on the plant microRNA scene. | Q38778370 | ||
Specific and unspecific responses of plants to cold and drought stress | Q38898937 | ||
OsDREB genes in rice, Oryza sativa L., encode transcription activators that function in drought-, high-salt- and cold-responsive gene expression. | Q38978927 | ||
Functional analysis of rice DREB1/CBF-type transcription factors involved in cold-responsive gene expression in transgenic rice | Q39096837 | ||
Arabidopsis CBF1 overexpression induces COR genes and enhances freezing tolerance | Q39099110 | ||
Water deficit down-regulates miR398 and miR408 in pea (Pisum sativum L.). | Q39112453 | ||
A combination of the Arabidopsis DREB1A gene and stress-inducible rd29A promoter improved drought- and low-temperature stress tolerance in tobacco by gene transfer | Q39123179 | ||
Improving plant drought, salt, and freezing tolerance by gene transfer of a single stress-inducible transcription factor | Q39123184 | ||
Soybean DREB1/CBF-type transcription factors function in heat and drought as well as cold stress-responsive gene expression | Q39135372 | ||
miR408 is involved in abiotic stress responses in Arabidopsis | Q39197788 | ||
Evolution of variety-specific regulatory schema for expression of osa-miR408 in indica rice varieties under drought stress | Q39284930 | ||
The N domain of Argonaute drives duplex unwinding during RISC assembly | Q39414363 | ||
CSDBase: an interactive database for cold shock domain-containing proteins and the bacterial cold shock response | Q39524459 | ||
MicroRNAs involving in cold, wounding and salt stresses in Triticum aestivum L. | Q39572364 | ||
Regulation of copper homeostasis and biotic interactions by microRNA 398b in common bean | Q41853506 | ||
The CBF1-dependent low temperature signalling pathway, regulon and increase in freeze tolerance are conserved in Populus spp. | Q42014078 | ||
Over-expression of ThpI from Choristoneura fumiferana enhances tolerance to cold in Arabidopsis | Q42024114 | ||
Methylation as a crucial step in plant microRNA biogenesis | Q42119452 | ||
The plant-specific kinase CDKF;1 is involved in activating phosphorylation of cyclin-dependent kinase-activating kinases in Arabidopsis. | Q42469203 | ||
Expression of a putative laccase gene, ZmLAC1, in maize primary roots under stress | Q42503813 | ||
Molecular insights into microRNA-mediated translational repression in plants | Q42629633 | ||
Analysis of complementarity requirements for plant microRNA targeting using a Nicotiana benthamiana quantitative transient assay | Q42642243 | ||
Identification of Cold-Responsive miRNAs and Their Target Genes in Nitrogen-Fixing Nodules of Soybean | Q42871660 | ||
Expression of a rice DREB1 gene, OsDREB1D, enhances cold and high-salt tolerance in transgenic Arabidopsis | Q43284797 | ||
Identification of drought-responsive microRNAs in Medicago truncatula by genome-wide high-throughput sequencing. | Q33962525 | ||
Widespread translational inhibition by plant miRNAs and siRNAs | Q34011733 | ||
miR398 and miR408 are up-regulated in response to water deficit in Medicago truncatula | Q34088244 | ||
Massive analysis of rice small RNAs: mechanistic implications of regulated microRNAs and variants for differential target RNA cleavage | Q34096555 | ||
Genome-wide identification of cold-responsive and new microRNAs in Populus tomentosa by high-throughput sequencing | Q34115002 | ||
Genome-wide identification and analysis of drought-responsive microRNAs in Oryza sativa | Q34132584 | ||
The action of ARGONAUTE1 in the miRNA pathway and its regulation by the miRNA pathway are crucial for plant development. | Q34142660 | ||
Uncovering small RNA-mediated responses to cold stress in a wheat thermosensitive genic male-sterile line by deep sequencing | Q34234798 | ||
Expression and tissue-specific localization of nitrate-responsive miRNAs in roots of maize seedlings. | Q34243931 | ||
Functions of microRNAs in plant stress responses | Q34256906 | ||
Regulation of leaf morphology by microRNA394 and its target LEAF CURLING RESPONSIVENESS. | Q34276777 | ||
Sorting of small RNAs into Arabidopsis argonaute complexes is directed by the 5' terminal nucleotide | Q34308999 | ||
Sorting the wheat from the chaff: identifying miRNAs in genomic survey sequences of Triticum aestivum chromosome 1AL. | Q34345313 | ||
Identification and characterization of cold-responsive microRNAs in tea plant (Camellia sinensis) and their targets using high-throughput sequencing and degradome analysis | Q34402101 | ||
Genome wide identification of chilling responsive microRNAs in Prunus persica | Q34414853 | ||
Posttranscriptional induction of two Cu/Zn superoxide dismutase genes in Arabidopsis is mediated by downregulation of miR398 and important for oxidative stress tolerance | Q34550260 | ||
The role of Mediator in small and long noncoding RNA production in Arabidopsis thaliana. | Q34626491 | ||
Specificity of ARGONAUTE7-miR390 interaction and dual functionality in TAS3 trans-acting siRNA formation | Q34761848 | ||
Microarray-based analysis of stress-regulated microRNAs in Arabidopsis thaliana | Q34763862 | ||
MicroRNA-mediated systemic down-regulation of copper protein expression in response to low copper availability in Arabidopsis | Q34769588 | ||
Plant microRNAs display differential 3' truncation and tailing modifications that are ARGONAUTE1 dependent and conserved across species | Q34804060 | ||
miR394 and LCR are involved in Arabidopsis salt and drought stress responses in an abscisic acid-dependent manner | Q35065416 | ||
Genome-wide characterization of new and drought stress responsive microRNAs in Populus euphratica | Q35099355 | ||
Differential expression of microRNAs and other small RNAs in barley between water and drought conditions. | Q35197145 | ||
Small RNAs in plants: recent development and application for crop improvement | Q35246904 | ||
Identification of chilling stress-responsive tomato microRNAs and their target genes by high-throughput sequencing and degradome analysis | Q35528823 | ||
PLANT COLD ACCLIMATION: Freezing Tolerance Genes and Regulatory Mechanisms | Q35687158 | ||
The Arabidopsis double-stranded RNA-binding protein HYL1 plays a role in microRNA-mediated gene regulation | Q35732742 | ||
Identification of cold-inducible microRNAs in grapevine | Q35753442 | ||
The Arabidopsis RCC1 Family Protein TCF1 Regulates Freezing Tolerance and Cold Acclimation through Modulating Lignin Biosynthesis | Q35783344 | ||
Origins and evolution of microRNA genes in plant species | Q35867651 | ||
Reactive oxygen gene network of plants. | Q35909671 | ||
ICE1: a regulator of cold-induced transcriptome and freezing tolerance in Arabidopsis | Q35964795 | ||
P433 | issue | 1 | |
P921 | main subject | microRNA | Q310899 |
P304 | page(s) | 1-15 | |
P577 | publication date | 2017-03-27 | |
P1433 | published in | Plant, Cell and Environment | Q15766307 |
P1476 | title | Regulation of low temperature stress in plants by microRNAs | |
P478 | volume | 41 |
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