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Small Genetic Circuits and MicroRNAs: Big Players in Polymerase II Transcriptional Control in Plants

Molly Megraw, Jason S. Cumbie, Maria G. Ivanchenko, Sergei A. Filichkin
Molly Megraw
aDepartment of Botany and Plant Pathology, Oregon State University, Corvallis, Oregon 97331
bDepartment of Electrical Engineering and Computer Science, Oregon State University, Corvallis, Oregon 97331
cCenter for Genome Research and Biocomputing, Oregon State University, Corvallis, Oregon 97331
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  • For correspondence: megrawm@science.oregonstate.edu
Jason S. Cumbie
aDepartment of Botany and Plant Pathology, Oregon State University, Corvallis, Oregon 97331
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Maria G. Ivanchenko
aDepartment of Botany and Plant Pathology, Oregon State University, Corvallis, Oregon 97331
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Sergei A. Filichkin
aDepartment of Botany and Plant Pathology, Oregon State University, Corvallis, Oregon 97331
cCenter for Genome Research and Biocomputing, Oregon State University, Corvallis, Oregon 97331
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  • ORCID record for Sergei A. Filichkin

Published February 2016. DOI: https://doi.org/10.1105/tpc.15.00852

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  • © 2016 American Society of Plant Biologists. All rights reserved.

Abstract

RNA Polymerase II (Pol II) regulatory cascades involving transcription factors (TFs) and their targets orchestrate the genetic circuitry of every eukaryotic organism. In order to understand how these cascades function, they can be dissected into small genetic networks, each containing just a few Pol II transcribed genes, that generate specific signal-processing outcomes. Small RNA regulatory circuits involve direct regulation of a small RNA by a TF and/or direct regulation of a TF by a small RNA and have been shown to play unique roles in many organisms. Here, we will focus on small RNA regulatory circuits containing Pol II transcribed microRNAs (miRNAs). While the role of miRNA-containing regulatory circuits as modular building blocks for the function of complex networks has long been on the forefront of studies in the animal kingdom, plant studies are poised to take a lead role in this area because of their advantages in probing transcriptional and posttranscriptional control of Pol II genes. The relative simplicity of tissue- and cell-type organization, miRNA targeting, and genomic structure make the Arabidopsis thaliana plant model uniquely amenable for small RNA regulatory circuit studies in a multicellular organism. In this Review, we cover analysis, tools, and validation methods for probing the component interactions in miRNA-containing regulatory circuits. We then review the important roles that plant miRNAs are playing in these circuits and summarize methods for the identification of small genetic circuits that strongly influence plant function. We conclude by noting areas of opportunity where new plant studies are imminently needed.

  • Received October 6, 2015.
  • Revised January 26, 2016.
  • Accepted February 10, 2016.
  • Published February 11, 2016.
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Small Genetic Circuits and MicroRNAs: Big Players in Polymerase II Transcriptional Control in Plants
Molly Megraw, Jason S. Cumbie, Maria G. Ivanchenko, Sergei A. Filichkin
The Plant Cell Feb 2016, 28 (2) 286-303; DOI: 10.1105/tpc.15.00852

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Small Genetic Circuits and MicroRNAs: Big Players in Polymerase II Transcriptional Control in Plants
Molly Megraw, Jason S. Cumbie, Maria G. Ivanchenko, Sergei A. Filichkin
The Plant Cell Feb 2016, 28 (2) 286-303; DOI: 10.1105/tpc.15.00852
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  • Article
    • Abstract
    • INTRODUCTION
    • POL II TRANSCRIPTION: IT ALL BEGINS AT THE START SITES
    • TARGETING: TOOLS AND TECHNIQUES
    • SMALL CIRCUITS AS BUILDING BLOCKS FOR UNDERSTANDING PLANT FUNCTION
    • BACK TO THE BASICS/BACK TO THE FUTURE
    • Acknowledgments
    • AUTHOR CONTRIBUTIONS
    • Footnotes
    • References
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The Plant Cell: 28 (2)
The Plant Cell
Vol. 28, Issue 2
Feb 2016
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More in this TOC Section

  • PhasiRNAs in Plants: Their Biogenesis, Genic Sources, and Roles in Stress Responses, Development, and Reproduction
  • Ten Years of the Maize Nested Association Mapping Population: Impact, Limitations, and Future Directions
  • Nitrate in 2020: Thirty Years from Transport to Signaling Networks
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