Taniura Hideo, Sng Judy C G, Yoneda Yukio
Laboratory of Molecular Pharmacology, Kanazawa University Graduate School of Natural Science and Technology, Kakuma-machi, Kanazawa, Ishikawa 920-1192, Japan.
Neurochem Int. 2007 Jul-Sep;51(2-4):85-91. doi: 10.1016/j.neuint.2007.04.018. Epub 2007 May 3.
Chromatin remodelling, including histone modifications has been recognized to play a central role in the regulation of gene expression. Histone modifications are mostly based on studies in cell culture systems in vitro. Recent evidence suggests that histone modifications are actively involved in activity-dependent neural plasticity via regulation of critical gene transcription necessary for the biological process in vivo. We have reviewed here the recent works studied on long-term memory formation, visual cortical plasticity during the critical period and drug-induced status epilepticus to elucidate a role for histone modifications in these biological processes. All of the studies indicate that chromatin structure, including histone modifications is highly dynamic within the nervous system and suggest the possibility that chromatin structure itself might be recruited as a target of plasticity-associated signal transduction mechanisms.
染色质重塑,包括组蛋白修饰,已被认为在基因表达调控中起核心作用。组蛋白修饰大多基于体外细胞培养系统的研究。最近的证据表明,组蛋白修饰通过调节体内生物过程所需的关键基因转录,积极参与依赖活动的神经可塑性。我们在此回顾了最近关于长期记忆形成、关键期视觉皮层可塑性和药物诱导的癫痫持续状态的研究,以阐明组蛋白修饰在这些生物过程中的作用。所有研究均表明,包括组蛋白修饰在内的染色质结构在神经系统中高度动态,并提示染色质结构本身可能被招募为可塑性相关信号转导机制的靶点。