Department of Bioengineering, University of California, San Diego, CA, U.S.A.
ASN Neuro. 2010 Jan 25;2(1):e00026. doi: 10.1042/AN20090035.
The contribution of astrocytes to the pathophysiology of AD (Alzheimer's disease) and the molecular and signalling mechanisms that potentially underlie them are still very poorly understood. However, there is mounting evidence that calcium dysregulation in astrocytes may be playing a key role. Intercellular calcium waves in astrocyte networks in vitro can be mechanically induced after Aβ (amyloid β-peptide) treatment, and spontaneously forming intercellular calcium waves have recently been shown in vivo in an APP (amyloid precursor protein)/PS1 (presenilin 1) Alzheimer's transgenic mouse model. However, spontaneous intercellular calcium transients and waves have not been observed in vitro in isolated astrocyte cultures in response to direct Aβ stimulation in the absence of potentially confounding signalling from other cell types. Here, we show that Aβ alone at relatively low concentrations is directly able to induce intracellular calcium transients and spontaneous intercellular calcium waves in isolated astrocytes in purified cultures, raising the possibility of a potential direct effect of Aβ exposure on astrocytes in vivo in the Alzheimer's brain. Waves did not occur immediately after Aβ treatment, but were delayed by many minutes before spontaneously forming, suggesting that intracellular signalling mechanisms required sufficient time to activate before intercellular effects at the network level become evident. Furthermore, the dynamics of intercellular calcium waves were heterogeneous, with distinct radial or longitudinal propagation orientations. Lastly, we also show that changes in the expression levels of the intermediate filament proteins GFAP (glial fibrillary acidic protein) and S100B are affected by Aβ-induced calcium changes differently, with GFAP being more dependent on calcium levels than S100B.
星形胶质细胞在 AD(阿尔茨海默病)病理生理学中的作用,以及潜在的分子和信号机制,目前仍知之甚少。然而,越来越多的证据表明,星形胶质细胞中的钙失调可能起着关键作用。在体外,Aβ(淀粉样β肽)处理后星形胶质细胞网络中的细胞间钙波可以被机械诱导,最近在 APP(淀粉样前体蛋白)/PS1(早老素 1)阿尔茨海默病转基因小鼠模型中也显示出体内自发形成的细胞间钙波。然而,在没有其他细胞类型潜在信号干扰的情况下,直接用 Aβ刺激时,在离体星形胶质细胞培养物中没有观察到自发的细胞间钙瞬变和波。在这里,我们表明,在相对较低的浓度下,Aβ 本身就能够直接诱导分离的纯化培养物中星形胶质细胞的细胞内钙瞬变和自发的细胞间钙波,这增加了 Aβ 暴露对阿尔茨海默病大脑中星形胶质细胞的潜在直接影响的可能性。波不会在 Aβ 处理后立即发生,而是延迟数分钟后自发形成,这表明细胞内信号机制需要足够的时间激活,然后才能在网络水平上产生细胞间的影响。此外,细胞间钙波的动力学是异质的,具有明显的径向或纵向传播方向。最后,我们还表明,GFAP(胶质纤维酸性蛋白)和 S100B 等中间丝蛋白的表达水平因 Aβ 诱导的钙变化而不同,GFAP 比 S100B 更依赖于钙水平。