Department of Medical Genetics, Alberta Children's Hospital Research Institute, University of Calgary, Calgary, Alberta T2N 4N1, Canada.
J Neurosci. 2013 Jan 2;33(1):259-72. doi: 10.1523/JNEUROSCI.0913-12.2013.
The brain plays a central role in controlling energy, glucose, and lipid homeostasis, with specialized neurons within nuclei of the mediobasal hypothalamus, namely the arcuate (ARC) and ventromedial (VMH), tasked with proper signal integration. Exactly how the exquisite cytoarchitecture and underlying circuitry becomes established within these nuclei remains largely unknown, in part because hypothalamic developmental programs are just beginning to be elucidated. Here, we demonstrate that the Retina and anterior neural fold homeobox (Rax) gene plays a key role in establishing ARC and VMH nuclei in mice. First, we show that Rax is expressed in ARC and VMH progenitors throughout development, consistent with genetic fate mapping studies demonstrating that Rax+ lineages give rise to VMH neurons. Second, the conditional ablation of Rax in a subset of VMH progenitors using a Shh::Cre driver leads to a fate switch from a VMH neuronal phenotype to a hypothalamic but non-VMH identity, suggesting that Rax is a selector gene for VMH cellular fates. Finally, the broader elimination of Rax throughout ARC/VMH progenitors using Six3::Cre leads to a severe loss of both VMH and ARC cellular phenotypes, demonstrating a role for Rax in both VMH and ARC fate specification. Combined, our study illustrates that Rax is required in ARC/VMH progenitors to specify neuronal phenotypes within this hypothalamic brain region. Rax thus provides a molecular entry point for further study of the ontology and establishment of hypothalamic feeding circuits.
大脑在控制能量、葡萄糖和脂质稳态方面发挥着核心作用,其中中脑基底部核团(mediobasal hypothalamus)内的特定神经元,即弓状核(ARC)和腹内侧核(VMH),负责适当的信号整合。这些核团中特化的神经细胞结构和基础电路是如何建立的,目前仍知之甚少,部分原因是下丘脑的发育程序才刚刚开始被阐明。在这里,我们证明了视网膜和前神经褶同源盒(Retina and anterior neural fold homeobox,Rax)基因在小鼠 ARC 和 VMH 核团的建立中起着关键作用。首先,我们表明 Rax 在整个发育过程中都在 ARC 和 VMH 祖细胞中表达,这与遗传命运图谱研究一致,该研究表明 Rax+谱系产生 VMH 神经元。其次,使用 Shh::Cre 驱动子对一小部分 VMH 祖细胞进行条件性 Rax 缺失,导致从 VMH 神经元表型向下丘脑但非 VMH 身份的命运转换,表明 Rax 是 VMH 细胞命运的选择基因。最后,使用 Six3::Cre 在 ARC/VMH 祖细胞中更广泛地消除 Rax 导致 VMH 和 ARC 细胞表型严重缺失,表明 Rax 在 VMH 和 ARC 命运特化中都发挥作用。综上所述,我们的研究表明,Rax 在 ARC/VMH 祖细胞中是指定该下丘脑脑区神经元表型所必需的。因此,Rax 为进一步研究下丘脑摄食回路的本体论和建立提供了一个分子切入点。