Guo Lan, Zhou Junli, Elling Axel A, Charron Jean-Benoit F, Deng Xing Wang
Peking-Yale Joint Center of Plant Molecular Genetics and Agrobiotechnology, College of Life Sciences, Peking University, Beijing 100871, China.
Plant Physiol. 2008 Aug;147(4):2070-83. doi: 10.1104/pp.108.122929. Epub 2008 Jun 11.
Here, we analyzed the effects of light regulation on four selected histone modifications (H3K4me3, H3K9ac, H3K9me2, and H3K27me3) and the relationship of these histone modifications with the expression of representative light-regulated genes. We observed that the histone modifications examined and gene transcription were cooperatively regulated in response to changing light environments. Using H3K9ac as an example, our analysis indicated that histone modification patterns are set up very early and are relatively stable during Arabidopsis (Arabidopsis thaliana) seedling development. Distinct photoreceptor systems are responsible for mediating the effects of different light qualities on histone modifications. Moreover, we found that light regulation of gene-specific histone modifications involved the known photomorphogenesis-related proteolytic system defined by the pleiotropic CONSTITUTIVE PHOTOMORPHOGENIC/DE-ETOLIATED proteins and histone modification enzymes (such as HD1). Furthermore, our data suggest that light-regulated changes in histone modifications might be an intricate part of light-controlled gene transcription. Thus, it is possible that variations in histone modifications are an important physiological component of plant responses to changing light environments.
在此,我们分析了光调节对四种选定组蛋白修饰(H3K4me3、H3K9ac、H3K9me2和H3K27me3)的影响,以及这些组蛋白修饰与代表性光调节基因表达之间的关系。我们观察到,所检测的组蛋白修饰和基因转录在响应不断变化的光照环境时受到协同调节。以H3K9ac为例,我们的分析表明,组蛋白修饰模式在拟南芥幼苗发育早期就已建立,并且在发育过程中相对稳定。不同的光受体系统负责介导不同光质对组蛋白修饰的影响。此外,我们发现基因特异性组蛋白修饰的光调节涉及由多效性组成型光形态建成/去黄化蛋白和组蛋白修饰酶(如HD1)所定义的已知光形态建成相关蛋白水解系统。此外,我们的数据表明,组蛋白修饰的光调节变化可能是光控基因转录的一个复杂部分。因此,组蛋白修饰的变化有可能是植物对不断变化的光照环境做出反应的重要生理组成部分。