Division of Translational Brain Research, German Center for Neurodegenerative Diseases (DZNE), Munich, Germany.
Division of Translational Brain Research, Center for Neuropathology and Prion Research, Ludwig-Maximilians University, Munich, Germany.
Glia. 2019 May;67(5):985-998. doi: 10.1002/glia.23584. Epub 2019 Jan 22.
The investigation of amyloid precursor protein (APP) has been mainly confined to its neuronal functions, whereas very little is known about its physiological role in astrocytes. Astrocytes exhibit a particular morphology with slender extensions protruding from somata and primary branches. Along these fine extensions, spontaneous calcium transients occur in spatially restricted microdomains. Within these microdomains mitochondria are responsible for local energy supply and Ca buffering. Using two-photon in vivo Ca imaging, we report a significant decrease in the density of active microdomains, frequency of spontaneous Ca transients and slower Ca kinetics in mice lacking APP. Mechanistically, these changes could be potentially linked to mitochondrial malfunction as our in vivo and in vitro data revealed severe, APP-dependent structural mitochondrial fragmentation in astrocytes. Functionally, such mitochondria exhibited prolonged kinetics and morphology dependent signal size of ATP-induced Ca transients. Our results highlight a prominent role of APP in the modulation of Ca activity in astrocytic microdomains whose precise functioning is crucial for the reinforcement and modulation of synaptic function. This study provides novel insights in APP physiological functions which are important for the understanding of the effects of drugs validated in Alzheimer's disease treatment that affect the function of APP.
淀粉样前体蛋白 (APP) 的研究主要局限于其神经元功能,而对其在星形胶质细胞中的生理作用知之甚少。星形胶质细胞具有独特的形态,细长的突起从胞体和主枝伸出。沿着这些细突起,自发的钙瞬变发生在空间受限的微域中。在这些微域中,线粒体负责局部能量供应和钙缓冲。我们使用双光子在体 Ca 成像,报告了缺乏 APP 的小鼠中活性微域的密度、自发钙瞬变的频率和较慢的 Ca 动力学显著降低。从机制上讲,这些变化可能与线粒体功能障碍有关,因为我们的体内和体外数据显示星形胶质细胞中严重的、依赖 APP 的线粒体结构碎片化。功能上,这些线粒体表现出延长的动力学和形态依赖性信号大小的 ATP 诱导的 Ca 瞬变。我们的结果强调了 APP 在调节星形胶质细胞微域 Ca 活性中的重要作用,其精确功能对于增强和调节突触功能至关重要。这项研究为 APP 的生理功能提供了新的见解,这对于理解在阿尔茨海默病治疗中经过验证的药物的影响是重要的,这些药物会影响 APP 的功能。