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Epigenetic Silencing in Transgenic Plants

Overview
Journal Front Plant Sci
Date 2015 Oct 7
PMID 26442010
Citations 66
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Abstract

Epigenetic silencing is a natural phenomenon in which the expression of genes is regulated through modifications of DNA, RNA, or histone proteins. It is a mechanism for defending host genomes against the effects of transposable elements and viral infection, and acts as a modulator of expression of duplicated gene family members and as a silencer of transgenes. A major breakthrough in understanding the mechanism of epigenetic silencing was the discovery of silencing in transgenic tobacco plants due to the interaction between two homologous promoters. The molecular mechanism of epigenetic mechanism is highly complicated and it is not completely understood yet. Two different molecular routes have been proposed for this, that is, transcriptional gene silencing, which is associated with heavy methylation of promoter regions and blocks the transcription of transgenes, and post-transcriptional gene silencing (PTGS), the basic mechanism is degradation of the cytosolic mRNA of transgenes or endogenous genes. Undesired transgene silencing is of major concern in the transgenic technologies used in crop improvement. A complete understanding of this phenomenon will be very useful for transgenic applications, where silencing of specific genes is required. The current status of epigenetic silencing in transgenic technology is discussed and summarized in this mini-review.

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References
1.
Vaucheret H, Nussaume L, Palauqui J, Quillere I, Elmayan T . A Transcriptionally Active State Is Required for Post-Transcriptional Silencing (Cosuppression) of Nitrate Reductase Host Genes and Transgenes. Plant Cell. 1997; 9(8):1495-1504. PMC: 157014. DOI: 10.1105/tpc.9.8.1495. View

2.
Meyer P . Transcriptional transgene silencing and chromatin components. Plant Mol Biol. 2000; 43(2-3):221-34. DOI: 10.1023/a:1006483428789. View

3.
van Eldik G, Litiere K, Jacobs J, Van Montagu M, Cornelissen M . Silencing of beta-1,3-glucanase genes in tobacco correlates with an increased abundance of RNA degradation intermediates. Nucleic Acids Res. 1998; 26(22):5176-81. PMC: 147964. DOI: 10.1093/nar/26.22.5176. View

4.
McGinnis K, Springer C, Lin Y, Carey C, Chandler V . Transcriptionally silenced transgenes in maize are activated by three mutations defective in paramutation. Genetics. 2006; 173(3):1637-47. PMC: 1526669. DOI: 10.1534/genetics.106.058669. View

5.
Dalmay T, Hamilton A, Mueller E, Baulcombe D . Potato virus X amplicons in arabidopsis mediate genetic and epigenetic gene silencing. Plant Cell. 2000; 12(3):369-79. PMC: 139837. DOI: 10.1105/tpc.12.3.369. View