Lai Kwok-On, Ip Nancy Y
Division of Life Science, Molecular Neuroscience Center and State Key Laboratory of Molecular Neuroscience, The Hong Kong University of Science and Technology, Hong Kong.
Biochim Biophys Acta. 2013 Dec;1832(12):2257-63. doi: 10.1016/j.bbadis.2013.08.012. Epub 2013 Sep 6.
Dendritic spines are specialized structures on neuronal processes where the majority of excitatory synapses are localized. Spines are highly dynamic, and their stabilization and morphology are influenced by synaptic activity. This extrinsic regulation of spine morphogenesis underlies experience-dependent brain development and information storage within the brain circuitry. In this review, we summarize recent findings that demonstrate the phenomenon of activity-dependent structural plasticity and the molecular mechanisms by which synaptic activity sculpt neuronal connections. Impaired structural plasticity is associated with perturbed brain function in neurodevelopmental disorders such as autism. Information from the mechanistic studies therefore provides important insights into the design of therapeutic strategies for these brain disorders.
树突棘是神经元突起上的特化结构,大多数兴奋性突触都位于此处。树突棘具有高度的动态性,其稳定性和形态受突触活动影响。这种对树突棘形态发生的外在调节是经验依赖性脑发育和脑回路内信息存储的基础。在本综述中,我们总结了近期的研究发现,这些发现证明了活动依赖性结构可塑性现象以及突触活动塑造神经元连接的分子机制。结构可塑性受损与自闭症等神经发育障碍中的脑功能紊乱有关。因此,来自机制研究的信息为这些脑部疾病治疗策略的设计提供了重要见解。