Laboratory of Neuroendocrinology-Molecular Cell Physiology, Faculty of Medicine, University of Ljubljana, Zaloška 4, 1000, Ljubljana, Slovenia.
Celica Biomedical, Tehnološki Park 24, 1000, Ljubljana, Slovenia.
J Neurosci Res. 2017 Nov;95(11):2152-2158. doi: 10.1002/jnr.24051. Epub 2017 Mar 31.
Astrocytes are excitable neural cells that contribute to brain information processing via bidirectional communication with neurons. This involves the release of gliosignaling molecules that affect synapses patterning and activity. Mechanisms mediating the release of these molecules likely consist of non-vesicular and vesicular-based mechanisms. It is the vesicle-based regulated exocytosis that is an evolutionary more complex process. It is well established that the release of gliosignaling molecules has profound effects on information processing in different brain regions (e.g., hippocampal astrocytes contribute to long-term potentiation [LTP]), which has traditionally been considered as one of the cellular mechanisms underlying learning and memory. However, the paradigm of vesicle-based regulated release of gliosignaling molecules from astrocytes is still far from being unanimously accepted. One of the most important questions is to what extent can the conclusions obtained from cultured astrocytes be translated to in vivo conditions. Here, we overview the properties of vesicle mobility and their fusion with the plasma membrane in cultured astrocytes and compare these parameters to those recorded in astrocytes from acute brain hippocampal slices. The results from both experimental models are similar, which validates experiments on isolated astrocytes and further supports arguments in favor of in vivo vesicle-based exocytotic release of gliosignaling molecules. © 2017 Wiley Periodicals, Inc.
星形胶质细胞是可兴奋的神经细胞,通过与神经元的双向通讯为大脑信息处理做出贡献。这涉及到释放影响突触模式和活动的神经胶质信号分子。介导这些分子释放的机制可能包括非囊泡和基于囊泡的机制。基于囊泡的调节性胞吐作用是一个进化上更为复杂的过程。已经证实,神经胶质信号分子的释放对不同脑区的信息处理有深远的影响(例如,海马星形胶质细胞有助于长时程增强 [LTP]),这传统上被认为是学习和记忆的细胞机制之一。然而,星形胶质细胞中基于囊泡的调节性释放神经胶质信号分子的范式仍然远未被普遍接受。最重要的问题之一是,从培养的星形胶质细胞中获得的结论在多大程度上可以转化为体内条件。在这里,我们综述了培养的星形胶质细胞中囊泡迁移及其与质膜融合的特性,并将这些参数与急性脑海马切片中星形胶质细胞记录的参数进行了比较。这两种实验模型的结果相似,这验证了对分离的星形胶质细胞的实验,并进一步支持了体内基于囊泡的神经胶质信号分子胞吐释放的论点。©2017 威立出版社