Institute for Neuroanatomy, University Medical Center, Georg-August-University Göttingen, Göttingen 37075, Germany.
Cereb Cortex. 2023 Jun 8;33(12):7688-7701. doi: 10.1093/cercor/bhad072.
The reeler mouse mutant has long served as a primary model to study the development of cortical layers, which is governed by the extracellular glycoprotein reelin secreted by Cajal-Retzius cells. Because layers organize local and long-range circuits for sensory processing, we investigated whether intracortical connectivity is compromised by reelin deficiency in this model. We generated a transgenic reeler mutant (we used both sexes), in which layer 4-fated spiny stellate neurons are labeled with tdTomato and applied slice electrophysiology and immunohistochemistry with synaptotagmin-2 to study the circuitry between the major thalamorecipient cell types, namely excitatory spiny stellate and inhibitory fast-spiking (putative basket) cells. In the reeler mouse, spiny stellate cells are clustered into barrel equivalents. In these clusters, we found that intrinsic physiology, connectivity, and morphology of spiny stellate and fast-spiking, putative basket cells does not significantly differ between reeler and controls. Properties of unitary connections, including connection probability, were very comparable in excitatory cell pairs and spiny stellate/fast-spiking cell pairs, suggesting an intact excitation-inhibition balance at the first stage of cortical sensory information processing. Together with previous findings, this suggests that thalamorecipient circuitry in the barrel cortex develops and functions independently of proper cortical lamination and postnatal reelin signaling.
缰核回小鼠突变体长期以来一直被用作研究皮质层发育的主要模型,而皮质层的发育受 Cajal-Retzius 细胞分泌的细胞外糖蛋白 reelin 调控。由于皮质层组织了用于感觉处理的局部和远程回路,我们研究了在这个模型中 reelin 缺乏是否会影响皮质内连接。我们生成了一个转基因缰核回突变体(我们使用了雌雄两性),其中,被标记为 tdTomato 的第四层棘状星形神经元用于研究主要的丘脑接受细胞类型(兴奋性棘状星形和抑制性快速放电(假定的篮状)细胞)之间的回路。在缰核回小鼠中,棘状星形细胞聚集形成桶状结构。在这些簇中,我们发现棘状星形和快速放电、假定的篮状细胞的内在生理学、连接和形态在缰核回和对照组之间没有显著差异。包括连接概率在内的单位连接特性在兴奋性细胞对和棘状星形/快速放电细胞对中非常相似,这表明在皮质感觉信息处理的第一阶段,兴奋-抑制平衡完好无损。结合以前的发现,这表明桶状皮质中的丘脑接受回路的发育和功能独立于适当的皮质分层和出生后 reelin 信号传递。