Department of Molecular Biosciences, University of Texas at Austin, TX, 78712, USA.
Department of Molecular Biosciences, University of Texas at Austin, TX, 78712, USA.
Dev Biol. 2021 Aug;476:240-248. doi: 10.1016/j.ydbio.2021.03.018. Epub 2021 Apr 14.
Female fertility in mammals requires iterative remodeling of the entire adult female reproductive tract across the menstrual/estrous cycle. However, while transcriptome dynamics across the estrous cycle have been reported in human and bovine models, no global analysis of gene expression across the estrous cycle has yet been reported for the mouse. Here, we examined the cellular composition and global transcriptional dynamics of the mouse oviduct along the anteroposterior axis and across the estrous cycle. We observed robust patterns of differential gene expression along the anteroposterior axis, but we found surprisingly few changes in gene expression across the estrous cycle. Notable gene expression differences along the anteroposterior axis included a surprising enrichment for genes related to embryonic development, such as Hox and Wnt genes. The relatively stable transcriptional dynamics across the estrous cycle differ markedly from other mammals, leading us to speculate that this is an evolutionarily derived state that may reflect the extremely rapid five-day mouse estrous cycle. This dataset fills a critical gap by providing an important genomic resource for a highly tractable genetic model of mammalian female reproduction.
哺乳动物的雌性生育能力需要在月经/发情周期内反复重塑整个成年雌性生殖道。然而,虽然已经在人和牛模型中报道了整个发情周期的转录组动态,但尚未在小鼠中报道整个发情周期的基因表达的全球分析。在这里,我们检查了小鼠输卵管沿前后轴和发情周期的细胞组成和全局转录动态。我们观察到沿前后轴的差异基因表达具有很强的模式,但我们发现发情周期中基因表达的变化很少。沿前后轴的显著基因表达差异包括对与胚胎发育相关的基因(如 Hox 和 Wnt 基因)的惊人富集。发情周期中相对稳定的转录动态与其他哺乳动物明显不同,这促使我们推测这是一种进化衍生的状态,可能反映了极其快速的五天小鼠发情周期。该数据集通过为哺乳动物雌性生殖的高度可操作遗传模型提供重要的基因组资源,填补了一个关键空白。