UPR 3294 Neurobiology and Development, CNRS Institute of Neurobiology A. Fessard, Gif-sur-Yvette, France.
PLoS One. 2012;7(2):e31140. doi: 10.1371/journal.pone.0031140. Epub 2012 Feb 17.
The proper development and maturation of neuronal circuits require precise migration of component neurons from their birthplace (germinal zone) to their final positions. Little is known about the effects of aberrant neuronal position on the functioning of organized neuronal groups, especially in mammals. Here, we investigated the formation and properties of brainstem respiratory neurons in looptail (Lp) mutant mice in which facial motor neurons closely apposed to some respiratory neurons fail to migrate due to loss of function of the Wnt/Planar Cell Polarity (PCP) protein Vangl2. Using calcium imaging and immunostaining on embryonic hindbrain preparations, we found that respiratory neurons constituting the embryonic parafacial oscillator (e-pF) settled at the ventral surface of the medulla in Vangl2(Lp/+) and Vangl2(Lp/Lp) embryos despite the failure of tangential migration of its normally adjacent facial motor nucleus. Anatomically, the e-pF neurons were displaced medially in Lp/+ embryos and rostro-medially Lp/Lp embryos. Pharmacological treatments showed that the e-pF oscillator exhibited characteristic network properties in both Lp/+ and Lp/Lp embryos. Furthermore, using hindbrain slices, we found that the other respiratory oscillator, the preBötzinger complex, was also anatomically and functionally established in Lp mutants. Importantly, the displaced e-pF oscillator established functional connections with the preBötC oscillator in Lp/+ mutants. Our data highlight the robustness of the developmental processes that assemble the neuronal networks mediating an essential physiological function.
神经元回路的适当发育和成熟需要组成神经元从发源地(生发区)精确迁移到它们的最终位置。关于异常神经元位置对有组织的神经元群体功能的影响,人们知之甚少,尤其是在哺乳动物中。在这里,我们研究了 looptail(Lp)突变小鼠脑干呼吸神经元的形成和特性,在这种突变小鼠中,由于 Wnt/Planar Cell Polarity(PCP)蛋白 Vangl2 功能丧失,面运动神经元与一些呼吸神经元紧密相邻,但未能迁移。使用钙成像和胚胎后脑制备的免疫染色,我们发现构成胚胎旁面振荡器(e-pF)的呼吸神经元尽管其正常相邻的面运动核未能进行切线迁移,但仍在延髓的腹表面定位于 Vangl2(+ / +)和 Vangl2(Lp / Lp)胚胎中。解剖学上,e-pF 神经元在 Lp / +胚胎中向内侧移位,在 Lp / Lp 胚胎中向头侧和内侧移位。药理学处理表明,e-pF 振荡器在 Lp / +和 Lp / Lp 胚胎中均表现出特征性的网络特性。此外,使用后脑切片,我们发现另一个呼吸振荡器,前 Bötzinger 复合体,在 Lp 突变体中也具有解剖学和功能上的建立。重要的是,移位的 e-pF 振荡器在 Lp / +突变体中与 preBötC 振荡器建立了功能性连接。我们的数据强调了组装介导基本生理功能的神经元网络的发育过程的稳健性。