Department of Biology and Biochemistry, University of Houston, Houston, Texas 77204-5001, USA.
Learn Mem. 2012 Nov 19;19(12):615-26. doi: 10.1101/lm.023259.111.
Na⁺-dependent high-affinity glutamate transporters have important roles in the maintenance of basal levels of glutamate and clearance of glutamate during synaptic transmission. Interestingly, several studies have shown that basal glutamate transport displays plasticity. Glutamate uptake increases in hippocampal slices during early long-term potentiation (E-LTP) and late long-term potentiation (L-LTP). Four issues were addressed in this research: Which glutamate transporter is responsible for the increase in glutamate uptake during L-LTP? In what cell type in the hippocampus does the increase in glutamate uptake occur? Does a single type of cell contain all the mechanisms to respond to an induction stimulus with a change in glutamate uptake? What role does the increase in glutamate uptake play during L-LTP? We have confirmed that GLT-1 is responsible for the increase in glutamate uptake during L-LTP. Also, we found that astrocytes were responsible for much, if not all, of the increase in glutamate uptake in hippocampal slices during L-LTP. Additionally, we found that cultured astrocytes alone were able to respond to an induction stimulus with an increase in glutamate uptake. Inhibition of basal glutamate uptake did not affect the induction of L-LTP, but inhibition of the increase in glutamate uptake did inhibit both the expression of L-LTP and induction of additional LTP. It seems likely that heightened glutamate transport plays an ongoing role in the ability of hippocampal circuitry to code and store information.
钠离子依赖型高亲和力谷氨酸转运体在维持谷氨酸的基础水平和清除突触传递过程中的谷氨酸方面发挥着重要作用。有趣的是,几项研究表明基础谷氨酸转运具有可塑性。在早期长时程增强(E-LTP)和晚期长时程增强(L-LTP)期间,海马切片中的谷氨酸摄取增加。本研究解决了四个问题:在 L-LTP 期间,哪种谷氨酸转运体负责增加谷氨酸摄取?在海马的哪种细胞类型中发生谷氨酸摄取的增加?单一类型的细胞是否包含所有机制,以响应诱导刺激而改变谷氨酸摄取?在 L-LTP 期间,谷氨酸摄取的增加起什么作用?我们已经证实,GLT-1 负责 L-LTP 期间谷氨酸摄取的增加。此外,我们发现,星形胶质细胞在 L-LTP 期间负责海马切片中谷氨酸摄取增加的大部分,如果不是全部。此外,我们发现,单独培养的星形胶质细胞能够响应诱导刺激增加谷氨酸摄取。基础谷氨酸摄取的抑制不影响 L-LTP 的诱导,但谷氨酸摄取增加的抑制抑制了 L-LTP 的表达和额外 LTP 的诱导。增强的谷氨酸转运似乎在海马回路编码和存储信息的能力中发挥着持续的作用。