IRCCS SYNLAB SDN S.p.A., 80143 Naples, Italy.
Division of Pharmacology, Department of Neuroscience, School of Medicine, University of Naples "Federico II", 80131 Naples, Italy.
Cell Calcium. 2022 Jul;105:102608. doi: 10.1016/j.ceca.2022.102608. Epub 2022 May 29.
The intricate glia interaction occurring after stroke strongly depend on the maintenance of intraglial ionic homeostasis. Among the several ionic channels and transporters, the plasmamembrane Na/Ca exchanger (NCX) represents a key player in maintaining astroglial Na and Ca homeostasis. Here, using a combined in vitro, in vivo and ex vivo experimental strategy we evaluated whether microglia responding to ischemic injury may influence the morphological and the transcriptional plasticity of post-ischemic astrocytes. Astrocyte plasticity was monitored by the expression of the transcription factor Acheate-scute like 1 (Ascl1), which plays a central role in the commitment of astrocytes towards the neuronal lineage. Furthermore, we explored the implication of NCX1 expression and activity in mediating Ascl1-dependent post-ischemic astrocyte remodeling. We demonstrated that: (a) in astrocytes co-cultured with microglia the exposure to oxygen and glucose deprivation followed by 7 days of reoxygenation induced a prevalence of bipolar astrocytes overexpressing Ascl1 and NCX1, whereas this did not occur in monocultured astrocytes; (b) the reoxygenation of anoxic astrocytes with the conditioned medium derived from IL-4 stimulated microglia strongly elicited the astrocytic co-expression of Ascl1 and NCX1; (c) Ascl1 expression in anoxic astrocytes was dependenton NCX1 since its silencing prevented Ascl1 expression both in in vitro and in post-ischemic ex vivo experimental conditions. Collectively, the results of our study support the idea that, after brain ischemia, astrocyte-microglia crosstalk can influence astrocytic morphology and its Ascl1 expression. This phenomenon is strictly dependent on ischemia-induced increase of NCX1 which in turn induces Ascl1 overexpression possibly through astrocytic Ca elevation.
中风后复杂的神经胶质相互作用强烈依赖于神经胶质内离子动态平衡的维持。在几种离子通道和转运体中,质膜 Na+/Ca2+交换体(NCX)是维持星形胶质细胞 Na+和 Ca2+动态平衡的关键因子。在这里,我们使用了一种结合了体外、体内和离体实验的策略,来评估对缺血性损伤做出反应的小胶质细胞是否会影响缺血后星形胶质细胞的形态和转录可塑性。星形胶质细胞的可塑性通过转录因子 Acheate-scute like 1(Ascl1)的表达来监测,Ascl1 在星形胶质细胞向神经元谱系的分化中起着核心作用。此外,我们还探讨了 NCX1 表达和活性在介导 Ascl1 依赖性缺血后星形胶质细胞重塑中的作用。我们的研究结果表明:(a)在与小胶质细胞共培养的星形胶质细胞中,暴露于缺氧和葡萄糖剥夺后再氧合 7 天,会诱导过表达 Ascl1 和 NCX1 的双极星形胶质细胞增多,而在单独培养的星形胶质细胞中则不会出现这种情况;(b)用白细胞介素-4 刺激的小胶质细胞的条件培养基再氧合缺氧的星形胶质细胞,强烈地诱导了 Ascl1 和 NCX1 的共表达;(c)缺氧星形胶质细胞中的 Ascl1 表达依赖于 NCX1,因为沉默 NCX1 可阻止 Ascl1 的表达,无论是在体外还是在缺血后的离体实验条件下。总之,我们的研究结果支持这样一种观点,即在脑缺血后,星形胶质细胞与小胶质细胞的相互作用可以影响星形胶质细胞的形态及其 Ascl1 的表达。这种现象严格依赖于缺血诱导的 NCX1 增加,而 NCX1 反过来又通过星形胶质细胞 Ca2+的升高诱导 Ascl1 的过表达。