Stress-responsive retrotransposable elements in conifers
Author:
Affiliation:
1. Ecological Genetics Laboratory, Department of Forest Molecular Genetics and Biotechnology, Forestry and Forest Products Research Institute
Publisher
Genetics Society of Japan
Subject
Genetics,Molecular Biology,General Medicine
Link
https://www.jstage.jst.go.jp/article/ggs/97/4/97_22-00042/_pdf
Reference42 articles.
1. Bhadouriya, S. L., Mehrotra, S., Basantani, M. K., Loake, G. J., and Mehrotra, R. (2020) Role of chromatin architecture in plant stress responses: an update. Front. Plant Sci. 11, 603380.
2. Bowe, L. M., Coat, G., and dePamphilis, C. W. (2000) Phylogeny of seed plants based on all three genomic compartments: extant gymnosperms are monophyletic and Gnetales’ closest relatives are conifers. Proc. Natl. Acad. Sci. USA 97, 4092–4097.
3. Butelli, E., Licciardello, C., Zhang, Y., Liu, J., Mackay, S., Bailey, P., Reforgiato-Recupero, G., and Martin, C. (2012) Retrotransposons control fruit-specific, cold-dependent accumulation of anthocyanins in blood oranges. Plant Cell 24, 1242–1255.
4. Cao, Y., Jiang, Y., Ding, M., He, S., Zhang, H., Lin, L., and Rong, J. (2015) Molecular characterization of a transcriptionally active Ty1/copia-like retrotransposon in Gossypium. Plant Cell Rep. 34, 1037–1047.
5. Cavrak, V. V., Lettner, N., Jamge, S., Kosarewicz, A., Bayer, L. M., and Mittelsten Scheid, O. (2014) How a retrotransposon exploits the plant’s heat stress response for its activation. PloS Genet. 10, e1004115.
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