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应激引发肾上腺髓质基因表达的变化:对急性和慢性应激的转录反应。

Stress triggered changes in gene expression in adrenal medulla: transcriptional responses to acute and chronic stress.

作者信息

Sabban Esther L, Liu Xiaoping, Serova Lidia, Gueorguiev Volodia, Kvetnansky Richard

机构信息

Department of Biochemistry and Molecular Biology, New York Medical College, Valhalla, New York 10595, USA.

出版信息

Cell Mol Neurobiol. 2006 Jul-Aug;26(4-6):845-56. doi: 10.1007/s10571-006-9069-1. Epub 2006 May 12.

Abstract
  1. Stress elicits activation of several transcription factors involved in the regulation of catecholamine biosynthetic enzyme gene expression depending on its duration or repetition. However, the dynamic of the conversion of transient transcriptional activation with acute stress to sustained changes in transcription in response to repeated exposure to stress in adrenomedullary catecholaminergic systems is not clear. 2. Here, we analyzed changes in levels of phospho-CREB (P-CREB), phospho-ERK1/2 (P-ERK1/2) and Fra-2 by Western Blot analysis in adrenal medulla of Sprague Dawley male rats exposed to single or repeated immobilization stress (IMO). For single stress, rats were immobilized for 5 min, 30 min, or 2 h and sacrificed immediately afterwards. In the repeated stress conditions, animals were immobilized for 2 h daily on each consecutive day prior to the final day (day 2 for 2x IMO, day 6 for 6x IMO) in which the rats were immobilized for a session lasting 5 min, 30 min or 2 h. There were two control groups, an absolute control (AC) not exposed to stress, and a handled control (HC) gently handled daily for 6 days. 3. Phosphorylation of CREB was rapid and elevated at the earliest time examined, even with single stress. However, with a second daily episode of stress the increase in P-CREB was observed for at least the entire duration of the stress. In contrast, phosphorylation of ERK1/2 was only significant after brief exposure to a single IMO. The elevation of Fra-2 protein level was slower, but was significant after 2 h of a single IMO. With repeated IMO, there were marked elevations of Fra-2 throughout the 2 h IMO, which were especially pronounced at the end of the immobilization. 4. The transient nature of the phosphorylation of CREB may be responsible for the short-lived induction of transcription of catecholamine biosynthetic enzymes after brief exposure to a single immobilization stress. The sustained phosphorylation of CREB throughout the repeated stress coupled with induction of Fra-2 may mediate the longer lasting responses to repeated stress.
摘要
  1. 应激会引发多种转录因子的激活,这些转录因子参与儿茶酚胺生物合成酶基因表达的调控,具体取决于应激的持续时间或重复次数。然而,在肾上腺髓质儿茶酚胺能系统中,急性应激引起的短暂转录激活如何转变为反复应激下转录的持续变化,其动态过程尚不清楚。2. 在此,我们通过蛋白质免疫印迹分析,检测了暴露于单次或反复固定应激(IMO)的Sprague Dawley雄性大鼠肾上腺髓质中磷酸化CREB(P-CREB)、磷酸化ERK1/2(P-ERK1/2)和Fra-2水平的变化。对于单次应激,大鼠固定5分钟、30分钟或2小时,随后立即处死。在反复应激条件下,在最后一天(2次IMO为第2天,6次IMO为第6天)之前连续每天将动物固定2小时,最后一天大鼠固定5分钟、30分钟或2小时。有两个对照组,一个是未暴露于应激的绝对对照组(AC),另一个是每天轻轻处理6天的处理对照组(HC)。3. 即使是单次应激,CREB的磷酸化在最早检测时间点就迅速升高。然而,每日第二次应激时,至少在整个应激持续期间都观察到P-CREB增加。相比之下,ERK1/2的磷酸化仅在短暂暴露于单次IMO后才显著。Fra-2蛋白水平的升高较慢,但单次IMO 2小时后显著升高。反复进行IMO时,在整个2小时的IMO过程中Fra-2都有明显升高,在固定结束时尤为明显。4. CREB磷酸化的短暂性质可能是短暂暴露于单次固定应激后儿茶酚胺生物合成酶转录短暂诱导的原因。反复应激期间CREB的持续磷酸化以及Fra-2的诱导可能介导了对反复应激的更持久反应。

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