Plant Physiol. email content delivery
HOME HELP FEEDBACK SUBSCRIPTIONS ARCHIVE SEARCH
 QUICK SEARCH:   [advanced]


     


Plant Physiology Preview
Published on July 22, 2005; 10.1104/pp.105.062943


This Article
Right arrow Full Text (Plant Physiology Preview (PDF))
Right arrow Supplemental Data
Right arrow All Versions of this Article:
138/4/2145    most recent
pp.105.062943v1
Right arrow Alert me when this article is cited
Right arrow Alert me if a correction is posted
Services
Right arrow Email this article to a friend
Right arrow Similar articles in this journal
Right arrow Similar articles in Web of Science
Right arrow Similar articles in PubMed
Right arrow Alert me to new issues of the journal
Right arrow Download to citation manager
Right arrow reprints & permissions
Citing Articles
Right arrow Citing Articles via HighWire
Right arrow Citing Articles via CrossRef
Right arrow Citing Articles via Web of Science (97)
Right arrow Citing Articles via Google Scholar
Google Scholar
Right arrow Articles by Xie, Z.
Right arrow Articles by Carrington, J. C.
Right arrow Search for Related Content
PubMed
Right arrow PubMed Citation
Right arrow Articles by Xie, Z.
Right arrow Articles by Carrington, J. C.
Agricola
Right arrow Articles by Xie, Z.
Right arrow Articles by Carrington, J. C.

Received March 15, 2005
Returned for revision May 22, 2005
Accepted May 23, 2005

Expression of Arabidopsis MIRNA Genes

Zhixin Xie , Edwards Allen , Noah Fahlgren , Adam Calamar , Scott A. Givan , and James C. Carrington *

Center for Gene Research and Biotechnology, and Department of Botany and Plant Pathology, Oregon State University, Corvallis, Oregon 97331

* Corresponding author; email: carrington{at}cgrb.oregonstate.edu.

MicroRNAs (miRNAs) are approximately 21-nucleotide noncoding RNAs that regulate target transcripts in plants and animals. In addition to miRNAs, plants contain several classes of endogenous small interfering RNAs (siRNAs) involved in target gene regulation and epigenetic silencing. Small RNA libraries were constructed from wild-type Arabidopsis (Arabidopsis thaliana) and mutant plants (rdr2 and dcl3) that were genetically enriched for miRNAs, and a computational procedure was developed to identify candidate miRNAs. Thirty-eight distinct miRNAs corresponding to 22 families were represented in the libraries. Using a 5' rapid amplification of cDNA ends procedure, the transcription start sites for 63 miRNA primary transcripts from 52 MIRNA loci (99 loci tested) were mapped, revealing features consistent with an RNA polymerase II mechanism of transcription. Ten loci (19%) yielded transcripts from multiple start sites. A canonical TATA box motif was identified upstream of the major start site at 45 (86%) of the mapped MIRNA loci. The 5'-mapping data were combined with miRNA cloning and 3'-PCR data to definitively validate expression of at least 73 MIRNA genes. These data provide a molecular basis to explore regulatory mechanisms of miRNA expression in plants.




This article has been cited by other articles:


Home page
Brief Funct Genomic ProteomicHome page
F. Schwach, S. Moxon, V. Moulton, and T. Dalmay
Deciphering the diversity of small RNAs in plants: the long and short of it
Brief Funct Genomic Proteomic, November 1, 2009; 8(6): 472 - 481.
[Abstract] [Full Text] [PDF]


Home page
Nucleic Acids ResHome page
Z. Zhang, J. Yu, D. Li, Z. Zhang, F. Liu, X. Zhou, T. Wang, Y. Ling, and Z. Su
PMRD: plant microRNA database
Nucleic Acids Res., October 6, 2009; (2009) gkp818v1.
[Abstract] [Full Text] [PDF]


Home page
Nucleic Acids ResHome page
L. Alves-Junior, S. Niemeier, A. Hauenschild, M. Rehmsmeier, and T. Merkle
Comprehensive prediction of novel microRNA targets in Arabidopsis thaliana
Nucleic Acids Res., July 1, 2009; 37(12): 4010 - 4021.
[Abstract] [Full Text] [PDF]


Home page
RNAHome page
N. Fahlgren, C. M. Sullivan, K. D. Kasschau, E. J. Chapman, J. S. Cumbie, T. A. Montgomery, S. D. Gilbert, M. Dasenko, T. W.H. Backman, S. A. Givan, et al.
Computational and analytical framework for small RNA profiling by high-throughput sequencing
RNA, May 1, 2009; 15(5): 992 - 1002.
[Abstract] [Full Text] [PDF]


Home page
Nucleic Acids ResHome page
B. Szarzynska, L. Sobkowiak, B. D. Pant, S. Balazadeh, W.-R. Scheible, B. Mueller-Roeber, A. Jarmolowski, and Z. Szweykowska-Kulinska
Gene structures and processing of Arabidopsis thaliana HYL1-dependent pri-miRNAs
Nucleic Acids Res., May 1, 2009; 37(9): 3083 - 3093.
[Abstract] [Full Text] [PDF]


Home page
Plant CellHome page
S. M. Brady and N. J. Provart
Web-Queryable Large-Scale Data Sets for Hypothesis Generation in Plant Biology
PLANT CELL, April 1, 2009; 21(4): 1034 - 1051.
[Abstract] [Full Text] [PDF]


Home page
Nucleic Acids ResHome page
L.-J. Xue, J.-J. Zhang, and H.-W. Xue
Characterization and expression profiles of miRNAs in rice seeds
Nucleic Acids Res., February 1, 2009; 37(3): 916 - 930.
[Abstract] [Full Text] [PDF]


Home page
BioinformaticsHome page
J.-G. Joung and Z. Fei
Identification of microRNA regulatory modules in Arabidopsis via a probabilistic graphical model
Bioinformatics, February 1, 2009; 25(3): 387 - 393.
[Abstract] [Full Text] [PDF]


Home page
ANN BOT (LOND)Home page
D. Ding, L. Zhang, H. Wang, Z. Liu, Z. Zhang, and Y. Zheng
Differential expression of miRNAs in response to salt stress in maize roots
Ann. Bot., January 1, 2009; 103(1): 29 - 38.
[Abstract] [Full Text] [PDF]


Home page
Plant CellHome page
H. Yamasaki, M. Hayashi, M. Fukazawa, Y. Kobayashi, and T. Shikanai
SQUAMOSA Promoter Binding Protein-Like7 Is a Central Regulator for Copper Homeostasis in Arabidopsis
PLANT CELL, January 1, 2009; 21(1): 347 - 361.
[Abstract] [Full Text] [PDF]


Home page
Proc. Natl. Acad. Sci. USAHome page
T. A. Montgomery, S. J. Yoo, N. Fahlgren, S. D. Gilbert, M. D. Howell, C. M. Sullivan, A. Alexander, G. Nguyen, E. Allen, J. H. Ahn, et al.
Inaugural Article: AGO1-miR173 complex initiates phased siRNA formation in plants
PNAS, December 23, 2008; 105(51): 20055 - 20062.
[Abstract] [Full Text] [PDF]


Home page
Genome ResHome page
Q.-H. Zhu, A. Spriggs, L. Matthew, L. Fan, G. Kennedy, F. Gubler, and C. Helliwell
A diverse set of microRNAs and microRNA-like small RNAs in developing rice grains
Genome Res., September 1, 2008; 18(9): 1456 - 1465.
[Abstract] [Full Text] [PDF]


Home page
Proc. Natl. Acad. Sci. USAHome page
Z. Dong, M.-H. Han, and N. Fedoroff
From the Cover: The RNA-binding proteins HYL1 and SE promote accurate in vitro processing of pri-miRNA by DCL1
PNAS, July 22, 2008; 105(29): 9970 - 9975.
[Abstract] [Full Text] [PDF]


Home page
Proc. Natl. Acad. Sci. USAHome page
B. Yu, L. Bi, B. Zheng, L. Ji, D. Chevalier, M. Agarwal, V. Ramachandran, W. Li, T. Lagrange, J. C. Walker, et al.
The FHA domain proteins DAWDLE in Arabidopsis and SNIP1 in humans act in small RNA biogenesis
PNAS, July 22, 2008; 105(29): 10073 - 10078.
[Abstract] [Full Text] [PDF]


Home page
Proc. Natl. Acad. Sci. USAHome page
S. Laubinger, T. Sachsenberg, G. Zeller, W. Busch, J. U. Lohmann, G. Ratsch, and D. Weigel
Dual roles of the nuclear cap-binding complex and SERRATE in pre-mRNA splicing and microRNA processing in Arabidopsis thaliana
PNAS, June 24, 2008; 105(25): 8795 - 8800.
[Abstract] [Full Text] [PDF]


Home page
Plant Physiol.Home page
R. F. Degenhardt and P. C. Bonham-Smith
Arabidopsis Ribosomal Proteins RPL23aA and RPL23aB Are Differentially Targeted to the Nucleolus and Are Disparately Required for Normal Development
Plant Physiology, May 1, 2008; 147(1): 128 - 142.
[Abstract] [Full Text] [PDF]


Home page
Plant Cell PhysiolHome page
A. Takeda, S. Iwasaki, T. Watanabe, M. Utsumi, and Y. Watanabe
The Mechanism Selecting the Guide Strand from Small RNA Duplexes is Different Among Argonaute Proteins
Plant Cell Physiol., April 1, 2008; 49(4): 493 - 500.
[Abstract] [Full Text] [PDF]


Home page
Proc. Natl. Acad. Sci. USAHome page
C. Lu, D.-H. Jeong, K. Kulkarni, M. Pillay, K. Nobuta, R. German, S. R. Thatcher, C. Maher, L. Zhang, D. Ware, et al.
Genome-wide analysis for discovery of rice microRNAs reveals natural antisense microRNAs (nat-miRNAs)
PNAS, March 25, 2008; 105(12): 4951 - 4956.
[Abstract] [Full Text] [PDF]


Home page
Nucleic Acids ResHome page
S. He, C. Liu, G. Skogerbo, H. Zhao, J. Wang, T. Liu, B. Bai, Y. Zhao, and R. Chen
NONCODE v2.0: decoding the non-coding
Nucleic Acids Res., January 11, 2008; 36(suppl_1): D170 - D172.
[Abstract] [Full Text] [PDF]


Home page
Plant Physiol.Home page
A. K. Grennan
Arabidopsis MicroRNAs
Plant Physiology, January 1, 2008; 146(1): 3 - 4.
[Full Text] [PDF]


Home page
J. Virol.Home page
T. Csorba, A. Bovi, T. Dalmay, and J. Burgyan
The p122 Subunit of Tobacco Mosaic Virus Replicase Is a Potent Silencing Suppressor and Compromises both Small Interfering RNA- and MicroRNA-Mediated Pathways
J. Virol., November 1, 2007; 81(21): 11768 - 11780.
[Abstract] [Full Text] [PDF]


Home page
Proc. Natl. Acad. Sci. USAHome page
R. S. Allen, J. Li, M. I. Stahle, A. Dubroue, F. Gubler, and A. A. Millar
From the Cover: Genetic analysis reveals functional redundancy and the major target genes of the Arabidopsis miR159 family
PNAS, October 9, 2007; 104(41): 16371 - 16376.
[Abstract] [Full Text] [PDF]


Home page
J. Virol.Home page
H. Vogler, R. Akbergenov, P. V. Shivaprasad, V. Dang, M. Fasler, M.-O. Kwon, S. Zhanybekova, T. Hohn, and M. Heinlein
Modification of Small RNAs Associated with Suppression of RNA Silencing by Tobamovirus Replicase Protein
J. Virol., October 1, 2007; 81(19): 10379 - 10388.
[Abstract] [Full Text] [PDF]


Home page
Plant Physiol.Home page
M. Tesfaye, J. Liu, D. L. Allan, and C. P. Vance
Genomic and Genetic Control of Phosphate Stress in Legumes
Plant Physiology, June 1, 2007; 144(2): 594 - 603.
[Full Text] [PDF]


Home page
Plant CellHome page
M. J. Axtell, J. A. Snyder, and D. P. Bartel
Common Functions for Diverse Small RNAs of Land Plants
PLANT CELL, June 1, 2007; 19(6): 1750 - 1769.
[Abstract] [Full Text] [PDF]


Home page
Proc. Natl. Acad. Sci. USAHome page
L. Song, M.-H. Han, J. Lesicka, and N. Fedoroff
Arabidopsis primary microRNA processing proteins HYL1 and DCL1 define a nuclear body distinct from the Cajal body
PNAS, March 27, 2007; 104(13): 5437 - 5442.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
D. H. Chitwood, M. Guo, F. T. S. Nogueira, and M. C. P. Timmermans
Establishing leaf polarity: the role of small RNAs and positional signals in the shoot apex
Development, March 1, 2007; 134(5): 813 - 823.
[Abstract] [Full Text] [PDF]


Home page
Genes Dev.Home page
R. Rajagopalan, H. Vaucheret, J. Trejo, and D. P. Bartel
A diverse and evolutionarily fluid set of microRNAs in Arabidopsis thaliana
Genes & Dev., December 15, 2006; 20(24): 3407 - 3425.
[Abstract] [Full Text] [PDF]


Home page
RNAHome page
J. Bove, C. L.H. Hord, and M. A. Mullen
The blossoming of RNA biology: Novel insights from plant systems
RNA, December 1, 2006; 12(12): 2035 - 2046.
[Full Text] [PDF]


Home page
BioinformaticsHome page
Y. Wang, T. Hindemitt, and K. F. X. Mayer
Significant sequence similarities in promoters and precursors of Arabidopsis thaliana non-conserved microRNAs
Bioinformatics, November 1, 2006; 22(21): 2585 - 2589.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
M.-F. Wu, Q. Tian, and J. W. Reed
Arabidopsis microRNA167 controls patterns of ARF6 and ARF8 expression, and regulates both female and male reproduction
Development, November 1, 2006; 133(21): 4211 - 4218.
[Abstract] [Full Text] [PDF]


Home page
Plant CellHome page
K. Nikovics, T. Blein, A. Peaucelle, T. Ishida, H. Morin, M. Aida, and P. Laufs
The Balance between the MIR164A and CUC2 Genes Controls Leaf Margin Serration in Arabidopsis
PLANT CELL, November 1, 2006; 18(11): 2929 - 2945.
[Abstract] [Full Text] [PDF]


Home page
Genome ResHome page
C. Lu, K. Kulkarni, F. F. Souret, R. MuthuValliappan, S. S. Tej, R. S. Poethig, I. R. Henderson, S. E. Jacobsen, W. Wang, P. J. Green, et al.
MicroRNAs and other small RNAs enriched in the Arabidopsis RNA-dependent RNA polymerase-2 mutant
Genome Res., October 1, 2006; 16(10): 1276 - 1288.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
G. Wu and R. S. Poethig
Temporal regulation of shoot development in Arabidopsis thaliana by miR156 and its target SPL3
Development, September 15, 2006; 133(18): 3539 - 3547.
[Abstract] [Full Text] [PDF]


Home page
Nucleic Acids ResHome page
K.-H. Yeom, Y. Lee, J. Han, M. R. Suh, and V. N. Kim
Characterization of DGCR8/Pasha, the essential cofactor for Drosha in primary miRNA processing
Nucleic Acids Res., September 11, 2006; 34(16): 4622 - 4629.
[Abstract] [Full Text] [PDF]


Home page
RNAHome page
M. Megraw, V. Baev, V. Rusinov, S. T. Jensen, K. Kalantidis, and A. G. Hatzigeorgiou
MicroRNA promoter element discovery in Arabidopsis
RNA, September 1, 2006; 12(9): 1612 - 1619.
[Abstract] [Full Text] [PDF]


Home page
Plant CellHome page
R. Sunkar, A. Kapoor, and J.-K. Zhu
Posttranscriptional Induction of Two Cu/Zn Superoxide Dismutase Genes in Arabidopsis Is Mediated by Downregulation of miR398 and Important for Oxidative Stress Tolerance
PLANT CELL, August 1, 2006; 18(8): 2051 - 2065.
[Abstract] [Full Text] [PDF]


Home page
Genes Dev.Home page
H. Vaucheret
Post-transcriptional small RNA pathways in plants: mechanisms and regulations.
Genes & Dev., April 1, 2006; 20(7): 759 - 771.
[Abstract] [Full Text] [PDF]


Home page
Genome ResHome page
C. Maher, L. Stein, and D. Ware
Evolution of Arabidopsis microRNA families through duplication events
Genome Res., April 1, 2006; 16(4): 510 - 519.
[Abstract] [Full Text] [PDF]


Home page
Clin. Cancer Res.Home page
Y. Xi, R. Shalgi, O. Fodstad, Y. Pilpel, and J. Ju
Differentially Regulated Micro-RNAs and Actively Translated Messenger RNA Transcripts by Tumor Suppressor p53 in Colon Cancer.
Clin. Cancer Res., April 1, 2006; 12(7): 2014 - 2024.
[Abstract] [Full Text] [PDF]


Home page
Plant Physiol.Home page
J. Hirsch, V. Lefort, M. Vankersschaver, A. Boualem, A. Lucas, C. Thermes, Y. d'Aubenton-Carafa, and M. Crespi
Characterization of 43 Non-Protein-Coding mRNA Genes in Arabidopsis, Including the MIR162a-Derived Transcripts
Plant Physiology, April 1, 2006; 140(4): 1192 - 1204.
[Abstract] [Full Text] [PDF]


Home page
RNAHome page
Y. KURIHARA, Y. TAKASHI, and Y. WATANABE
The interaction between DCL1 and HYL1 is important for efficient and precise processing of pri-miRNA in plant microRNA biogenesis
RNA, February 1, 2006; 12(2): 206 - 212.
[Abstract] [Full Text] [PDF]


Home page
Plant CellHome page
T.-J. Chiou, K. Aung, S.-I Lin, C.-C. Wu, S.-F. Chiang, and C.-l. Su
Regulation of Phosphate Homeostasis by MicroRNA in Arabidopsis
PLANT CELL, February 1, 2006; 18(2): 412 - 421.
[Abstract] [Full Text] [PDF]


Home page
Proc. Natl. Acad. Sci. USAHome page
Z. Xie, E. Allen, A. Wilken, and J. C. Carrington
DICER-LIKE 4 functions in trans-acting small interfering RNA biogenesis and vegetative phase change in Arabidopsis thaliana
PNAS, September 6, 2005; 102(36): 12984 - 12989.
[Abstract] [Full Text] [PDF]




HOME HELP FEEDBACK SUBSCRIPTIONS ARCHIVE SEARCH
ASPB Publications PLANT PHYSIOLOGY® THE PLANT CELL
Copyright © 2005 by the American Society of Plant Biologists