scholarly article | Q13442814 |
P356 | DOI | 10.1093/JXB/ERQ295 |
P953 | full work available at URL | https://academic.oup.com/jxb/article-pdf/62/2/487/16929161/erq295.pdf |
http://jxb.oxfordjournals.org/cgi/content/abstract/62/2/487 | ||
http://academic.oup.com/jxb/article-pdf/62/2/487/16929161/erq295.pdf | ||
P698 | PubMed publication ID | 20952628 |
P5875 | ResearchGate publication ID | 47449906 |
P50 | author | Qian-Hao Zhu | Q63961337 |
P2093 | author name string | Chris A. Helliwell | |
P2860 | cites work | Antiquity of microRNAs and their targets in land plants | Q24529143 |
A diverse set of microRNAs and microRNA-like small RNAs in developing rice grains | Q24655537 | ||
Conserved noncoding genomic sequences associated with a flowering-time quantitative trait locus in maize | Q24675282 | ||
CARPEL FACTORY, a Dicer homolog, and HEN1, a novel protein, act in microRNA metabolism in Arabidopsis thaliana | Q28201415 | ||
Prediction of plant microRNA targets | Q28219387 | ||
Origin, biogenesis, and activity of plant microRNAs | Q28236171 | ||
MicroRNAS and their regulatory roles in plants | Q28237934 | ||
miR156-regulated SPL transcription factors define an endogenous flowering pathway in Arabidopsis thaliana | Q28256186 | ||
Cleistogamous flowering in barley arises from the suppression of microRNA-guided HvAP2 mRNA cleavage | Q28749279 | ||
Genetic framework for flowering-time regulation by ambient temperature-responsive miRNAs in Arabidopsis | Q28751978 | ||
Regulation of flowering time and floral organ identity by a MicroRNA and its APETALA2-like target genes | Q29617907 | ||
A microRNA as a translational repressor of APETALA2 in Arabidopsis flower development | Q29618436 | ||
The heterochronic maize mutant Corngrass1 results from overexpression of a tandem microRNA. | Q31106061 | ||
OsSPL14 promotes panicle branching and higher grain productivity in rice | Q84285581 | ||
Expression of Arabidopsis MIRNA genes | Q33220242 | ||
Phylogeny and domain evolution in the APETALA2-like gene family | Q33223030 | ||
Identification of novel and candidate miRNAs in rice by high throughput sequencing | Q33321962 | ||
Genetics and evolution of inflorescence and flower development in grasses | Q33340792 | ||
Global identification of microRNA-target RNA pairs by parallel analysis of RNA ends | Q33341604 | ||
The rice heterochronic gene SUPERNUMERARY BRACT regulates the transition from spikelet meristem to floral meristem | Q33343481 | ||
miR172 regulates stem cell fate and defines the inner boundary of APETALA3 and PISTILLATA expression domain in Arabidopsis floral meristems | Q33344151 | ||
The maize tasselseed4 microRNA controls sex determination and meristem cell fate by targeting Tasselseed6/indeterminate spikelet1. | Q33344868 | ||
Floral meristem initiation and meristem cell fate are regulated by the maize AP2 genes ids1 and sid1. | Q33345881 | ||
Repression of flowering by the miR172 target SMZ. | Q33347386 | ||
Over-expression of miR172 causes loss of spikelet determinacy and floral organ abnormalities in rice (Oryza sativa). | Q33348359 | ||
SnapShot: Control of flowering in Arabidopsis | Q33349007 | ||
The control of maize spikelet meristem fate by the APETALA2-like gene indeterminate spikelet1 | Q33368583 | ||
microRNA172 down-regulates glossy15 to promote vegetative phase change in maize | Q33879100 | ||
Widespread translational inhibition by plant miRNAs and siRNAs | Q34011733 | ||
Regulation of OsSPL14 by OsmiR156 defines ideal plant architecture in rice | Q34117075 | ||
Negative regulation of the Arabidopsis homeotic gene AGAMOUS by the APETALA2 product. | Q34534286 | ||
Genetic interactions among floral homeotic genes of Arabidopsis | Q34549006 | ||
Temporal regulation of shoot development in Arabidopsis thaliana by miR156 and its target SPL3 | Q34558030 | ||
Molecular characterization of the major wheat domestication gene Q. | Q34587434 | ||
Small RNAs and developmental timing in plants | Q37585720 | ||
Floral organ identity: 20 years of ABCs | Q37626199 | ||
The sequential action of miR156 and miR172 regulates developmental timing in Arabidopsis | Q42536034 | ||
Floral patterning defects induced by Arabidopsis APETALA2 and microRNA172 expression in Nicotiana benthamiana | Q42732328 | ||
Orchestration of the floral transition and floral development in Arabidopsis by the bifunctional transcription factor APETALA2. | Q42950257 | ||
MicroRNA399 is a long-distance signal for the regulation of plant phosphate homeostasis | Q43078155 | ||
P1/HC-Pro, a viral suppressor of RNA silencing, interferes with Arabidopsis development and miRNA unction | Q44314640 | ||
Molecular evolution of the AP2 subfamily. | Q45929667 | ||
A thermosensory pathway controlling flowering time in Arabidopsis thaliana | Q46153974 | ||
The homeotic gene APETALA3 of Arabidopsis thaliana encodes a MADS box and is expressed in petals and stamens | Q46435786 | ||
The GIGANTEA-regulated microRNA172 mediates photoperiodic flowering independent of CONSTANS in Arabidopsis | Q46985621 | ||
Retracted: Small RNA duplexes function as mobile silencing signals between plant cells | Q50555663 | ||
Structure determinants for accurate processing of miR172a in Arabidopsis thaliana. | Q51920248 | ||
Graft-transmissible induction of potato tuberization by the microRNA miR172. | Q51928566 | ||
Dissection of floral induction pathways using global expression analysis. | Q52098771 | ||
Identification of microRNA processing determinants by random mutagenesis of Arabidopsis MIR172a precursor. | Q53354986 | ||
Small Silencing RNAs in Plants Are Mobile and Direct Epigenetic Modification in Recipient Cells | Q56926901 | ||
Specific Effects of MicroRNAs on the Plant Transcriptome | Q57167516 | ||
P433 | issue | 2 | |
P407 | language of work or name | English | Q1860 |
P921 | main subject | developmental gene expression regulation | Q70697639 |
P304 | page(s) | 487-495 | |
P577 | publication date | 2010-10-15 | |
P1433 | published in | Journal of Experimental Botany | Q6295179 |
P1476 | title | Regulation of flowering time and floral patterning by miR172 | |
P478 | volume | 62 |
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