Vriet Cécile, Hennig Lars, Laloi Christophe
BVME UMR 7265, Lab Genet Biophys Plantes, Aix Marseille Université, Marseille, 13284, France,
Cell Mol Life Sci. 2015 Apr;72(7):1261-73. doi: 10.1007/s00018-014-1792-z. Epub 2015 Jan 13.
Exposure of plants to adverse environmental conditions leads to extensive transcriptional changes. Genome-wide approaches and gene function studies have revealed the importance of chromatin-level control in the regulation of stress-responsive gene expression. Advances in understanding chromatin modifications implicated in plant stress response and identifying proteins involved in chromatin-mediated transcriptional responses to stress are briefly presented in this review. We then highlight how chromatin-mediated gene expression changes can be coupled to the metabolic status of the cell, since many of the chromatin-modifying proteins involved in transcriptional regulation depend on cofactors and metabolites that are shared with enzymes in basic metabolism. Lastly, we discuss the stability and heritability of stress-induced chromatin changes and the potential of chromatin-based strategies for increasing stress tolerance of crops.
植物暴露于不利环境条件下会导致广泛的转录变化。全基因组方法和基因功能研究揭示了染色质水平调控在应激反应基因表达调控中的重要性。本综述简要介绍了在理解植物应激反应中涉及的染色质修饰以及鉴定参与染色质介导的应激转录反应的蛋白质方面取得的进展。然后,我们强调了染色质介导的基因表达变化如何与细胞的代谢状态相耦合,因为许多参与转录调控的染色质修饰蛋白依赖于与基础代谢中的酶共享的辅因子和代谢物。最后,我们讨论了应激诱导的染色质变化的稳定性和遗传性,以及基于染色质的策略提高作物抗逆性的潜力。