Perea G, Araque A
Instituto Cajal, Consejo Superior de Investigaciones Cientificas, Madrid, España.
Rev Neurol. 2003;36(2):137-44.
Astrocytes, a type of glial cell in the central nervous system (CNS), have been classically considered as trophic, structural and supportive cells for neurons. However, in recent years, accumulating evidence suggest a more active role of astrocytes in the physiology of neurons, being involved in the information processing of the CNS. Astrocytes exhibit both a form of excitability based on variations of the intracellular Ca2+ concentration, and a form of communication based on intercellular Ca2+ waves. Furthermore, synaptically released neurotransmitters mobilize Ca2+ from the astrocytic intracellular stores, i.e., the astrocytic cellular excitability can be triggered by the synaptic activity. Finally, astrocytes release the transmitter glutamate to the extracellular space through a Ca2+ dependent mechanism, modulating the neuronal electrical activity and the synaptic transmission. As a consequence of the demonstration of these new forms of cellular communication between astrocytes and neurons, the concept of tripartite synapse has been proposed, in which the synapse is functionally constituted by three elements, i.e., the pre and postsynaptic elements and the surrounding astrocytes.
The novel results discussed in the present review support the presence of new and complex information pathways in the CNS, which are based on the existence of bidirectional communication between astrocytes and neurons, and which have relevant consequences on the cellular mechanisms responsible for the information processing of the CNS.
星形胶质细胞是中枢神经系统(CNS)中的一种神经胶质细胞,传统上被认为是神经元的营养、结构和支持性细胞。然而,近年来,越来越多的证据表明星形胶质细胞在神经元生理学中发挥着更积极的作用,参与中枢神经系统的信息处理。星形胶质细胞既表现出基于细胞内Ca2+浓度变化的兴奋性形式,也表现出基于细胞间Ca2+波的通讯形式。此外,突触释放的神经递质从星形胶质细胞内储存库中动员Ca2+,即星形胶质细胞的细胞兴奋性可由突触活动触发。最后,星形胶质细胞通过Ca2+依赖机制将神经递质谷氨酸释放到细胞外空间,调节神经元电活动和突触传递。由于星形胶质细胞与神经元之间这些新的细胞通讯形式的证实,提出了三方突触的概念,其中突触在功能上由三个元件组成,即突触前和突触后元件以及周围的星形胶质细胞。
本综述中讨论的新结果支持中枢神经系统中存在基于星形胶质细胞与神经元之间双向通讯的新的复杂信息通路,这对负责中枢神经系统信息处理的细胞机制具有相关影响。