Department of Synaptic Plasticity, Max Planck Institute for Brain Research, Frankfurt am Main, Germany.
PLoS One. 2013 Dec 2;8(12):e81517. doi: 10.1371/journal.pone.0081517. eCollection 2013.
Cadherins, Ca(2+)-dependent adhesion molecules, are crucial for cell-cell junctions and remodeling. Cadherins form inter-junctional lattices by the formation of both cis and trans dimers. Here, we directly visualize and quantify the spatiotemporal dynamics of wild-type and dimer mutant N-cadherin interactions using time-lapse imaging of junction assembly, disassembly and a FRET reporter to assess Ca(2+)-dependent interactions. A trans dimer mutant (W2A) and a cis mutant (V81D/V174D) exhibited an increased Ca(2+)-sensitivity for the disassembly of trans dimers compared to the WT, while another mutant (R14E) was insensitive to Ca(2+)-chelation. Time-lapse imaging of junction assembly and disassembly, monitored in 2D and 3D (using cellular spheroids), revealed kinetic differences in the different mutants as well as different behaviors in the 2D and 3D environment. Taken together, these data provide new insights into the role that the cis and trans dimers play in the dynamic interactions of cadherins.
钙黏蛋白(Cadherins)是钙依赖性黏附分子,对于细胞-细胞连接和重塑至关重要。钙黏蛋白通过形成顺式和反式二聚体来形成连接间的晶格。在这里,我们使用连接组装、解组装的延时成像以及评估钙依赖性相互作用的 FRET 报告基因,直接可视化和量化野生型和二聚体突变体 N-钙黏蛋白相互作用的时空动力学。与 WT 相比,反式二聚体突变体(W2A)和顺式突变体(V81D/V174D)在解组装反式二聚体方面表现出更高的钙敏感性,而另一个突变体(R14E)对钙螯合不敏感。在二维和三维(使用细胞球体)中监测连接组装和解组装的延时成像揭示了不同突变体之间的动力学差异,以及在二维和三维环境中的不同行为。总之,这些数据为顺式和反式二聚体在钙黏蛋白的动态相互作用中所起的作用提供了新的见解。