斑马鱼V0v脊髓中间神经元的分子分析及Evx1和Evx2下游转录调控因子的鉴定

IF 4 3区 生物学 Q1 DEVELOPMENTAL BIOLOGY
Samantha J England, Amber K Rusnock, Amra Mujcic, Angelica Kowalchuk, Sarah de Jager, William C Hilinski, José L Juárez-Morales, Matthew E Smith, Ginny Grieb, Santanu Banerjee, Katharine E Lewis
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引用次数: 0

摘要

背景:V0v脊髓中间神经元是高度保守的谷氨酸能联合神经元,在运动回路中起作用。我们之前已经证明Evx1和Evx2是指定这些细胞的神经递质表型所必需的。然而,我们对V0v细胞中这些转录因子下游的基因调控网络所知甚少。方法:为了确定V0v基因调控网络的候选成员,我们对野生型和evx1;evx2双突变斑马鱼V0v脊髓中间神经元进行了facc分类,并使用微阵列和单细胞RNA-seq分析了它们的表达谱。我们还使用原位杂交来比较evx1, evx2双突变体和野生型兄弟姐妹中候选基因子集的表达。结果:我们的数据揭示了斑马鱼V0v脊髓中间神经元在48 h时的两种分子不同亚型,并表明,在这个发育阶段,evx1;evx2双突变细胞转化为抑制性脊髓中间神经元或运动神经元。我们的研究结果还确定了25个转录调节基因需要Evx1/2才能在V0v中间神经元中表达,另外还有11个转录调节基因在V0v中间神经元中被Evx1/2抑制。后者的两个基因是hmx2和hmx3a。有趣的是,我们发现Hmx2/3a抑制skor1a和nefma的dI2中间神经元表达,这两个基因在V0v中间神经元中表达需要evx2 /2。这表明Evx1/2可能通过抑制Hmx2/3a的表达来调节V0v中间神经元中skor1a和nefma的表达。结论:本研究确定了斑马鱼V0v脊髓中间神经元的两个分子上不同的亚群,以及多个转录调节因子,这些转录调节因子是Evx1/2下游的强候选物,以指定这些细胞的基本功能特征。我们的数据进一步表明,在Evx1和Evx2缺失的情况下,V0v脊髓中间神经元最初将其神经递质表型从兴奋性转变为抑制性,然后开始表达不同类型的抑制性脊髓中间神经元或运动神经元的标记物。综上所述,我们的发现大大增加了我们对V0v和脊柱发育的了解,并使我们更接近确定这种关键细胞类型的完整基因调控网络的基本目标。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Molecular analyses of zebrafish V0v spinal interneurons and identification of transcriptional regulators downstream of Evx1 and Evx2 in these cells.

Background: V0v spinal interneurons are highly conserved, glutamatergic, commissural neurons that function in locomotor circuits. We have previously shown that Evx1 and Evx2 are required to specify the neurotransmitter phenotype of these cells. However, we still know very little about the gene regulatory networks that act downstream of these transcription factors in V0v cells.

Methods: To identify candidate members of V0v gene regulatory networks, we FAC-sorted wild-type and evx1;evx2 double mutant zebrafish V0v spinal interneurons and expression-profiled them using microarrays and single cell RNA-seq. We also used in situ hybridization to compare expression of a subset of candidate genes in evx1;evx2 double mutants and wild-type siblings.

Results: Our data reveal two molecularly distinct subtypes of zebrafish V0v spinal interneurons at 48 h and suggest that, by this stage of development, evx1;evx2 double mutant cells transfate into either inhibitory spinal interneurons, or motoneurons. Our results also identify 25 transcriptional regulator genes that require Evx1/2 for their expression in V0v interneurons, plus a further 11 transcriptional regulator genes that are repressed in V0v interneurons by Evx1/2. Two of the latter genes are hmx2 and hmx3a. Intriguingly, we show that Hmx2/3a, repress dI2 interneuron expression of skor1a and nefma, two genes that require Evx1/2 for their expression in V0v interneurons. This suggests that Evx1/2 might regulate skor1a and nefma expression in V0v interneurons by repressing Hmx2/3a expression.

Conclusions: This study identifies two molecularly distinct subsets of zebrafish V0v spinal interneurons, as well as multiple transcriptional regulators that are strong candidates for acting downstream of Evx1/2 to specify the essential functional characteristics of these cells. Our data further suggest that in the absence of both Evx1 and Evx2, V0v spinal interneurons initially change their neurotransmitter phenotypes from excitatory to inhibitory and then, later, start to express markers of distinct types of inhibitory spinal interneurons, or motoneurons. Taken together, our findings significantly increase our knowledge of V0v and spinal development and move us closer towards the essential goal of identifying the complete gene regulatory networks that specify this crucial cell type.

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来源期刊
Neural Development
Neural Development 生物-发育生物学
CiteScore
6.60
自引率
0.00%
发文量
11
审稿时长
>12 weeks
期刊介绍: Neural Development is a peer-reviewed open access, online journal, which features studies that use molecular, cellular, physiological or behavioral methods to provide novel insights into the mechanisms that underlie the formation of the nervous system. Neural Development aims to discover how the nervous system arises and acquires the abilities to sense the world and control adaptive motor output. The field includes analysis of how progenitor cells form a nervous system during embryogenesis, and how the initially formed neural circuits are shaped by experience during early postnatal life. Some studies use well-established, genetically accessible model systems, but valuable insights are also obtained from less traditional models that provide behavioral or evolutionary insights.
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