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l-α-氨基己二酸引起星形胶质细胞病变,对小鼠海马突触可塑性和记忆产生负面影响。

l-α-aminoadipate causes astrocyte pathology with negative impact on mouse hippocampal synaptic plasticity and memory.

机构信息

Center for Neuroscience and Cell Biology, CNC, Coimbra, Portugal.

Faculty of Medicine, University of Coimbra, FMUC, Coimbra, Portugal.

出版信息

FASEB J. 2021 Aug;35(8):e21726. doi: 10.1096/fj.202100336R.

Abstract

Increasing evidence shows that astrocytes, by releasing and uptaking neuroactive molecules, regulate synaptic plasticity, considered the neurophysiological basis of memory. This study investigated the impact of l-α-aminoadipate (l-AA) on astrocytes which sense and respond to stimuli at the synaptic level and modulate hippocampal long-term potentiation (LTP) and memory. l-AA selectivity toward astrocytes was proposed in the early 70's and further tested in different systems. Although it has been used for impairing the astrocytic function, its effects appear to be variable in different brain regions. To test the effects of l-AA in the hippocampus of male C57Bl/6 mice we performed two different treatments (ex vivo and in vivo) and took advantage of other compounds that were reported to affect astrocytes. l-AA superfusion did not affect the basal synaptic transmission but decreased LTP magnitude. Likewise, trifluoroacetate and dihydrokainate decreased LTP magnitude and occluded the effect of l-AA on synaptic plasticity, confirming l-AA selectivity. l-AA superfusion altered astrocyte morphology, increasing the length and complexity of their processes. In vivo, l-AA intracerebroventricular injection not only reduced the astrocytic markers but also LTP magnitude and impaired hippocampal-dependent memory in mice. Interestingly, d-serine administration recovered hippocampal LTP reduction triggered by l-AA (2 h exposure in hippocampal slices), whereas in mice injected with l-AA, the superfusion of d-serine did not fully rescue LTP magnitude. Overall, these data show that both l-AA treatments affect astrocytes differently, astrocytic activation or loss, with similar negative outcomes on hippocampal LTP, implying that opposite astrocytic adaptive alterations are equally detrimental for synaptic plasticity.

摘要

越来越多的证据表明,星形胶质细胞通过释放和摄取神经活性分子来调节突触可塑性,而突触可塑性被认为是记忆的神经生理基础。本研究调查了 l-α-氨基己二酸(l-AA)对星形胶质细胞的影响,星形胶质细胞在突触水平感知和响应刺激,并调节海马体长时程增强(LTP)和记忆。l-AA 对星形胶质细胞的选择性在 70 年代早期被提出,并在不同的系统中进一步测试。尽管它已被用于削弱星形胶质细胞的功能,但它在不同脑区的作用似乎是可变的。为了测试 l-AA 在雄性 C57Bl/6 小鼠海马体中的作用,我们进行了两种不同的处理(离体和体内),并利用了其他被报道会影响星形胶质细胞的化合物。l-AA 灌流不会影响基础突触传递,但会降低 LTP 幅度。同样,三氟乙酸盐和二氢奎宁酸也降低了 LTP 幅度,并阻断了 l-AA 对突触可塑性的影响,证实了 l-AA 的选择性。l-AA 灌流改变了星形胶质细胞的形态,增加了它们的突起的长度和复杂性。在体内,l-AA 脑室注射不仅降低了星形胶质细胞标志物的表达,还降低了 LTP 幅度,并损害了小鼠的海马体依赖性记忆。有趣的是,d-丝氨酸给药恢复了 l-AA 引发的海马体 LTP 降低(在海马切片中暴露 2 小时),而在注射 l-AA 的小鼠中,d-丝氨酸的灌流并不能完全恢复 LTP 幅度。总的来说,这些数据表明,l-AA 的两种处理方式以不同的方式影响星形胶质细胞,星形胶质细胞的激活或缺失,对海马体 LTP 产生相似的负面影响,这表明相反的星形胶质细胞适应性改变同样对突触可塑性有害。

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