Wang Shiyi, Baumert Ryan, Séjourné Gabrielle, Sivadasan Bindu Dhanesh, Dimond Kylie, Sakers Kristina, Vazquez Leslie, Moore Jessica L, Tan Christabel Xin, Takano Tetsuya, Rodriguez Maria Pia, Brose Nick, Bradley Luke, Lessing Reed, Soderling Scott H, La Spada Albert R, Eroglu Cagla
bioRxiv. 2025 Apr 25:2023.04.09.536178. doi: 10.1101/2023.04.09.536178.
Astrocytes are highly complex cells that mediate critical roles in synapse formation and maintenance by establishing thousands of direct contacts with synapses through their perisynaptic processes. Here, we found that the most common Parkinsonism gene mutation, LRRK2 G2019S, enhances the phosphorylation of the ERM proteins (Ezrin, Radixin, and Moesin), components of the perisynaptic astrocyte processes in a subset of cortical astrocytes. The ERM hyperphosphorylation was accompanied by decreased astrocyte morphological complexity and reduced excitatory synapse density and function. Dampening ERM phosphorylation levels in LRRK2 G2019S mouse astrocytes restored both their morphology and the excitatory synapse density in the anterior cingulate cortex. To determine how LRRK2 mutation impacts Ezrin interactome, we used an BioID proteomic approach, and we found that astrocytic Ezrin interacts with Atg7, a master regulator of autophagy. The Ezrin/Atg7 interaction is inhibited by Ezrin phosphorylation, thus diminished in LRRK2 G2019S astrocytes. Importantly, the Atg7 function is required to maintain proper astrocyte morphology. Our data provide a molecular pathway through which the LRRK2 G2019S mutation alters astrocyte morphology and synaptic density in a brain-region-specific manner.
星形胶质细胞是高度复杂的细胞,通过其突触周围过程与突触建立数千个直接接触,在突触形成和维持中发挥关键作用。在这里,我们发现最常见的帕金森病基因突变LRRK2 G2019S会增强ERM蛋白(埃兹蛋白、根蛋白和膜突蛋白)的磷酸化,ERM蛋白是一部分皮质星形胶质细胞中突触周围星形胶质细胞过程的组成部分。ERM的过度磷酸化伴随着星形胶质细胞形态复杂性的降低以及兴奋性突触密度和功能的降低。降低LRRK2 G2019S小鼠星形胶质细胞中的ERM磷酸化水平可恢复其形态以及前扣带回皮质中的兴奋性突触密度。为了确定LRRK2突变如何影响埃兹蛋白相互作用组,我们使用了一种BioID蛋白质组学方法,并且我们发现星形胶质细胞中的埃兹蛋白与自噬的主要调节因子Atg7相互作用。埃兹蛋白/Atg7相互作用受到埃兹蛋白磷酸化的抑制,因此在LRRK2 G2019S星形胶质细胞中减弱。重要的是,Atg7的功能是维持适当的星形胶质细胞形态所必需的。我们的数据提供了一条分子途径,通过该途径LRRK2 G2019S突变以脑区特异性方式改变星形胶质细胞形态和突触密度。