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Gene expression profiling of puberty-associated genes reveals abundant tissue and sex-specific changes across postnatal development

机译:青春期相关基因的基因表达谱揭示了产后发育过程中丰富的组织和性别特异性变化

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摘要

The timing of human puberty is highly variable, sexually dimorphic, and associated with adverse health outcomes. Over 20 genes carrying rare mutations have been identified in known pubertal disorders, many of which encode critical components of the hypothalamic-pituitary-gonadal (HPG) axis. Recent genome-wide association studies (GWAS) have identified more than 100 candidate genes at loci associated with age at menarche or voice breaking in males. We know little about the spatial, temporal or postnatal expression patterns of the majority of these puberty-associated genes. Using a high-throughput and sensitive microfluidic quantitative PCR strategy, we profiled the gene expression patterns of the mouse orthologs of 178 puberty-associated genes in male and female mouse HPG axis tissues, the pineal gland, and the liver at five postnatal ages spanning the pubertal transition. The most dynamic gene expression changes were observed prior to puberty in all tissues. We detected known and novel tissue-enhanced gene expression patterns, with the hypothalamus expressing the largest number of the puberty-associated genes. Notably, over 40 puberty-associated genes in the pituitary gland showed sex-biased gene expression, most of which occurred peri-puberty. These sex-biased genes included the orthologs of candidate genes at GWAS loci that show sex-discordant effects on pubertal timing. Our findings provide new insight into the expression of puberty-associated genes and support the possibility that the pituitary plays a role in determining sex differences in the timing of puberty.
机译:人类青春期的时间变化很大,性二形性,并与不良的健康结果有关。在已知的青春期疾病中已鉴定出20多个携带罕见突变的基因,其中许多编码下丘脑-垂体-性腺(HPG)轴的关键成分。最近的全基因组关联研究(GWAS)已在与男性初潮或声音破裂年龄相关的基因座上鉴定了100多个候选基因。我们对大多数与青春期相关的基因的空间,时间或出生后表达模式知之甚少。使用高通量和灵敏的微流定量PCR策略,我们分析了在五个出生后年龄的雄性和雌性小鼠HPG轴组织,松果体和肝脏中178个青春期相关基因的小鼠直系同源基因的基因表达模式。青春期过渡。在青春期之前,在所有组织中观察到最具活力的基因表达变化。我们检测到已知和新颖的组织增强基因表达模式,下丘脑表达最大数量的青春期相关基因。值得注意的是,垂体中超过40个与青春期相关的基因表现出性别偏向的基因表达,其中大多数发生在青春期左右。这些性别偏向基因包括GWAS基因座上候选基因的直系同源基因,这些基因对青春期时机表现出性别不一致的影响。我们的发现为青春期相关基因的表达提供了新的见解,并支持垂体在决定青春期时间性别差异中发挥作用的可能性。

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