Rungta Ravi L, Bernier Louis-Philippe, Dissing-Olesen Lasse, Groten Christopher J, LeDue Jeffrey M, Ko Rebecca, Drissler Sibyl, MacVicar Brian A
Djavad Mowafaghian Centre for Brain Health, University of British Columbia, Vancouver, BC, V6T 2B5, Canada.
Glia. 2016 Dec;64(12):2093-2103. doi: 10.1002/glia.23042. Epub 2016 Aug 1.
Astrocytes display complex morphologies with an array of fine extensions extending from the soma and the primary thick processes. Until the use of genetically encoded calcium indicators (GECIs) selectively expressed in astrocytes, Ca signaling was only examined in soma and thick primary processes of astrocytes where Ca -sensitive fluorescent dyes could be imaged. GECI imaging in astrocytes revealed a previously unsuspected pattern of spontaneous Ca transients in fine processes that has not been observed without chronic expression of GECIs, raising potential concerns about the effects of GECI expression. Here, we perform two-photon imaging of Ca transients in adult CA1 hippocampal astrocytes using a new single-cell patch-loading strategy to image Ca -sensitive fluorescent dyes in the cytoplasm of fine processes. We observed that astrocyte fine processes exhibited a high frequency of spontaneous Ca transients whereas astrocyte soma rarely showed spontaneous Ca oscillations similar to previous reports using GECIs. We exploited this new approach to show these signals were independent of neuronal spiking, metabotropic glutamate receptor (mGluR) activity, TRPA1 channels, and L- or T-type voltage-gated calcium channels. Removal of extracellular Ca almost completely and reversibly abolished the spontaneous signals while IP R2 KO mice also exhibited spontaneous and compartmentalized signals, suggesting they rely on influx of extracellular Ca . The Ca influx dependency of the spontaneous signals in patch-loaded astrocytes was also observed in astrocytes expressing GCaMP3, further highlighting the presence of Ca influx pathways in astrocytes. The mechanisms underlying these localized Ca signals are critical for understanding how astrocytes regulate important functions in the adult brain. GLIA 2016;64:2093-2103.
星形胶质细胞呈现出复杂的形态,具有从胞体和主要的粗大突起延伸出的一系列精细分支。在能够选择性地在星形胶质细胞中表达的基因编码钙指示剂(GECIs)被使用之前,钙信号仅在星形胶质细胞的胞体和粗大的主要突起中进行检测,在这些部位可以对钙敏感荧光染料进行成像。在星形胶质细胞中进行GECI成像揭示了在精细分支中一种以前未被怀疑的自发钙瞬变模式,而在没有长期表达GECIs的情况下这种模式并未被观察到,这引发了对GECI表达影响的潜在担忧。在这里,我们使用一种新的单细胞贴片加载策略对成年CA1海马星形胶质细胞中的钙瞬变进行双光子成像,以对精细分支细胞质中的钙敏感荧光染料进行成像。我们观察到星形胶质细胞的精细分支表现出高频的自发钙瞬变,而星形胶质细胞的胞体很少显示出自发钙振荡,这与之前使用GECIs的报道相似。我们利用这种新方法表明这些信号独立于神经元放电、代谢型谷氨酸受体(mGluR)活性、TRPA1通道以及L型或T型电压门控钙通道。去除细胞外钙几乎完全且可逆地消除了自发信号,而IP R2基因敲除小鼠也表现出自发且分区的信号,这表明它们依赖于细胞外钙的内流。在表达GCaMP3的星形胶质细胞中也观察到了贴片加载星形胶质细胞中自发信号对钙内流的依赖性,这进一步突出了星形胶质细胞中钙内流途径的存在。这些局部钙信号的潜在机制对于理解星形胶质细胞如何调节成人大脑中的重要功能至关重要。《胶质细胞》2016年;64卷:2093 - 2103页