University of Nebraska School of Biological Sciences, 1901 Vine Street, Lincoln, NE 68588, USA.
Mol Plant. 2014 Mar;7(3):502-13. doi: 10.1093/mp/ssu001. Epub 2014 Jan 30.
Pre-exposure to a stress may alter the plant's cellular, biochemical, and/or transcriptional responses during future encounters as a 'memory' from the previous stress. Genes increasing transcription in response to a first dehydration stress, but producing much higher transcript levels in a subsequent stress, represent the super-induced 'transcription memory' genes in Arabidopsis thaliana. The chromatin environment (histone H3 tri-methylations of Lys 4 and Lys 27, H3K4me3, and H3K27me3) studied at five dehydration stress memory genes revealed existence of distinct memory-response subclasses that responded differently to CLF deficiency and displayed different transcriptional activities during the watered recovery periods. Among the most important findings is the novel aspect of the H3K27me3 function observed at specific dehydration stress memory genes. In contrast to its well-known role as a chromatin repressive mechanism at developmentally regulated genes, H3K27me3 did not prevent transcription from the dehydration stress-responding genes. The high H3K27me3 levels present during transcriptionally inactive states did not interfere with the transition to active transcription and with H3K4me3 accumulation. H3K4me3 and H3K27me3 marks function independently and are not mutually exclusive at the dehydration stress-responding memory genes.
预先暴露于应激可能会改变植物在未来遭遇时的细胞、生化和/或转录反应,形成之前应激的“记忆”。在拟南芥中,响应第一次脱水胁迫增加转录但在随后的胁迫中产生更高转录水平的基因代表了超诱导的“转录记忆”基因。在五个脱水应激记忆基因的染色质环境(组蛋白 H3 赖氨酸 4 和赖氨酸 27 的三甲基化,H3K4me3 和 H3K27me3)研究中,发现存在不同的记忆反应亚类,它们对 CLF 缺乏的反应不同,并在浇水恢复期间表现出不同的转录活性。最重要的发现之一是在特定脱水应激记忆基因中观察到的 H3K27me3 功能的新方面。与它在发育调控基因中作为染色质抑制机制的已知作用相反,H3K27me3 并没有阻止从脱水应激反应基因的转录。在转录不活跃状态下存在的高 H3K27me3 水平不会干扰向活跃转录的转变,也不会干扰 H3K4me3 的积累。H3K4me3 和 H3K27me3 标记独立发挥功能,在脱水应激反应记忆基因中并非相互排斥。