Difference between revisions of "IC4R008-Epigenomic-2012- 22835977"
(→Plant Materials & Treatment) |
(→Research Findings) |
||
| Line 6: | Line 6: | ||
==Research Findings== | ==Research Findings== | ||
| + | * The role of epigenomic modifications in rice plant development can be illustrated by the function of genes involved in histone modification and DNA methylation (Fig. 1A). In addition to DNA methylation, histone modification seems to also play a primary role in TE repression in rice (Fig. 1B). | ||
| + | [[File:IC4R008-Epigenomic-2012- 22835977-f1.png |center |thumb |800px |'''Fig. 1. Models of epigenetic mark changes over genes induced by environmental signals (A), and transposons induced by stresses in rice (B). Histone modification marks associated with gene activation may be induced by inductive signals, whereas marks associated with gene repression (i.e., H3K27me3) may remain unchanged during gene activation. The role of histone H3K9 methyltransferases SDG714 and SDG718, DNA demethylase DNG701 and histone H3K9 deacetylase SRT701 in transposon repression/activation is indicated.''']] | ||
==Labs working on this Project== | ==Labs working on this Project== | ||
Revision as of 09:57, 27 July 2016
Contents
Project Title
- Epigenomic Modification and Epigenetic Regulation in Rice
The Background of This Project
- Epigenomes define gene expression profiles in specific cell types or in response to specific environmental cues in higher eukaryotes. Rice is the largest food plant in the world and becomes as a model plant for cereal genomics because of its small genome size (430 Mb). Whole-genome sequences are available for japonica and indica, two of the three subspecies of rice that have been independently domesticated from wild relatives. Recent studies have accumulated a large set of rice transcriptomic, small RNA, DNA methylation and histone modification data obtained by high throughput analyses (http://rice.plantbiology. msu.edu/cgi-bin/gbrowse/rice/). Work in plants including rice has revealed specific mechanisms involved in acquisition, inheritance and resetting of epigenetic information. In this review, we will summarize recent development in rice epigenomic and epigenetic research by focussing on epigenetic regulation of rice transposon repression, plant development, stress adaptation, and gene expression related to heterosis.
Research Findings
- The role of epigenomic modifications in rice plant development can be illustrated by the function of genes involved in histone modification and DNA methylation (Fig. 1A). In addition to DNA methylation, histone modification seems to also play a primary role in TE repression in rice (Fig. 1B).
Fig. 1. Models of epigenetic mark changes over genes induced by environmental signals (A), and transposons induced by stresses in rice (B). Histone modification marks associated with gene activation may be induced by inductive signals, whereas marks associated with gene repression (i.e., H3K27me3) may remain unchanged during gene activation. The role of histone H3K9 methyltransferases SDG714 and SDG718, DNA demethylase DNG701 and histone H3K9 deacetylase SRT701 in transposon repression/activation is indicated.
Labs working on this Project
- National Key Laboratory for Crop Genetic Improvement, Huazhong Agricultural University, Wuhan 430070, China
- Institut de Biologie des Plantes, Universite´ Paris sud, Orsay 91405, France
Corresponding Author
- D.-X. Zhou: dao-xiu.zhou@u-psud.fr