Joint Laboratory for Brain Function and Health, Jinan University and the University of Hong Kong, Medical School of Jinan University, Guangzhou 510632, People's Republic of China.
J Neurosci. 2012 Oct 3;32(40):13729-43. doi: 10.1523/JNEUROSCI.1965-12.2012.
Atypical cadherin Celsr3, a regulator of planar cell polarity, is critical for the development of the axonal blueprint. We previously showed that expression of Celsr3 is necessary to establish forebrain connections such as the anterior commissure and thalamocortical and corticospinal tracts. The requirement for Celsr3 during hippocampal wiring and its action in the hippocampus remain largely unexplored. Here, we compared the connectivity and maturation of the hippocampal formation in Celsr3|Foxg1 and Celsr3|Dlx mice. Celsr3 is inactivated in the whole telencephalon, including the hippocampal primordium, in Celsr3|Foxg1 mice, and in the early basal telencephalon, including ganglionic eminences and ventral diencephalon, in Celsr3|Dlx mice. Behavioral tests showed that both mutants were hyperactive and had impaired learning and memory. Abnormal cytoarchitecture of CA1, CA3, and dentate gyrus was found in the Celsr3|Foxg1 mutant, in which afferent and efferent hippocampal pathways, as well as intrinsic connections, were dramatically disrupted. In Celsr3|Dlx mutant mice, hippocampal cytoarchitecture was mildly affected and extrinsic and intrinsic connectivity moderately disturbed. In both mutants, pyramidal neurons in CA1 harbored atrophic dendritic trees, with decreased synapse density and increased proportion of symmetric versus asymmetric synapses, and long-term potentiation was altered. In contrast, mutant hippocampal neurons extended neurites that were normal, even longer than those of control neurons, indicating that anomalies in vivo are secondary to defective connections. Postnatal neurogenesis was preserved and mutant interneurons were able to migrate to the hippocampus. Thus, like in neocortex, Celsr3 is required for hippocampal development, connectivity and function, and for pyramidal cell maturation.
非典型钙黏蛋白 Celsr3 是平面细胞极性的调节剂,对轴突蓝图的发育至关重要。我们之前曾表明,Celsr3 的表达对于建立前脑连接(如前连合和丘脑皮质和皮质脊髓束)是必需的。Celsr3 在海马布线中的要求及其在海马中的作用在很大程度上仍未得到探索。在这里,我们比较了 Celsr3|Foxg1 和 Celsr3|Dlx 小鼠中海马结构的连接和成熟情况。在 Celsr3|Foxg1 小鼠中,Celsr3 被失活于整个端脑,包括海马原基,而在 Celsr3|Dlx 小鼠中,Celsr3 被失活于早期基底端脑,包括神经节隆起和腹侧间脑。行为测试表明,两种突变体均表现出过度活跃,并伴有学习和记忆受损。在 Celsr3|Foxg1 突变体中发现 CA1、CA3 和齿状回的细胞结构异常,其中传入和传出海马通路以及内在连接均严重受损。在 Celsr3|Dlx 突变体小鼠中,海马细胞结构受到轻度影响,而外在和内在连接受到中度干扰。在两种突变体中,CA1 中的锥体神经元均具有萎缩的树突,突触密度降低,对称性突触与非对称性突触的比例增加,长时程增强也发生改变。相比之下,突变体海马神经元伸出的神经突是正常的,甚至比对照神经元的还要长,表明体内异常是由于连接缺陷所致。产后神经发生得以保留,并且突变体中间神经元能够迁移到海马中。因此,与新皮层一样,Celsr3 对于海马的发育、连接和功能以及锥体神经元的成熟是必需的。