Department of Pathology and Cell Biology, Columbia University Medical Center, New York, NY 10032, USA; NYU Neuroscience Institute, New York University Langone Medical Center, New York, NY 10016, USA.
NYU Neuroscience Institute, New York University Langone Medical Center, New York, NY 10016, USA.
Neuron. 2019 Sep 4;103(5):853-864.e4. doi: 10.1016/j.neuron.2019.06.003. Epub 2019 Jun 27.
GABAergic interneurons have many important functions in cortical circuitry, a reflection of their cell diversity. The developmental origins of this diversity are poorly understood. Here, we identify rostral-caudal regionality in Wnt exposure within the interneuron progenitor zone delineating the specification of the two main interneuron subclasses. Caudally situated medial ganglionic eminence (MGE) progenitors receive high levels of Wnt signaling and give rise to somatostatin (SST)-expressing cortical interneurons. By contrast, parvalbumin (PV)-expressing basket cells originate mostly from the rostral MGE, where Wnt signaling is attenuated. Interestingly, rather than canonical signaling through β-catenin, signaling via the non-canonical Wnt receptor Ryk regulates interneuron cell-fate specification in vivo and in vitro. Indeed, gain of function of Ryk intracellular domain signaling regulates SST and PV fate in a dose-dependent manner, suggesting that Ryk signaling acts in a graded fashion. These data reveal an important role for non-canonical Wnt-Ryk signaling in establishing the correct ratios of cortical interneuron subtypes.
GABA 能中间神经元在皮质电路中有许多重要功能,这反映了它们的细胞多样性。这种多样性的发育起源还知之甚少。在这里,我们在中间神经元祖细胞区鉴定了 Wnt 暴露的头尾部区域,该区域划定了两种主要中间神经元子类的特异性。位于尾部的内侧神经节隆起 (MGE) 祖细胞接收高水平的 Wnt 信号,并产生表达生长抑素 (SST) 的皮质中间神经元。相比之下,表达 Parvalbumin (PV) 的篮状细胞主要起源于 MGE 的头部,那里的 Wnt 信号被减弱。有趣的是,非经典的 Wnt 受体 Ryk 通过非经典信号通路而不是通过 β-catenin 信号通路调节中间神经元的细胞命运特化。实际上,Ryk 细胞内结构域信号的功能获得以剂量依赖的方式调节 SST 和 PV 命运,这表明 Ryk 信号以分级方式发挥作用。这些数据揭示了非经典 Wnt-Ryk 信号在建立正确的皮质中间神经元亚型比例方面的重要作用。