瘦素受体信号的消融改变了雌性小鼠的生长性状转录组成熟。

IF 3.8 3区 医学 Q2 ENDOCRINOLOGY & METABOLISM
Tiffany K Miles, Angela K Odle, Stephanie D Byrum, Alex N Lagasse, Anessa C Haney, Victoria G Ortega, Ashley K Herdman, Melanie C MacNicol, Angus M MacNicol, Gwen V Childs
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引用次数: 0

摘要

垂体前叶促生长因子响应来自脂肪因子瘦素的代谢信号,通过生长激素(GH)分泌优化对身体营养状态的功能反应。瘦素在垂体促生长因子中的分子靶点包括GH, GH释放激素受体(GHRHR),以及在女性中,转录因子POU1F1,所有这些都依赖于瘦素刺激表达。为了确定瘦素作用于生长因子的营养机制,我们分析了携带缺乏瘦素受体的生长因子(LEPR-null突变体)的雌性小鼠模型和对照垂体的单细胞基因转录组。计算聚类的结果确定所有常见的垂体细胞类型和差异表达的基因。突变的雌性促生长因子簇显示Gh和Htatsf1 mRNA水平降低,而在缺乏Prop1或POU1F1的突变垂体中,Gh和Htatsf1 mRNA水平也降低。突变体也显示垂体干和祖细胞标志物(如Sox9)的表达增加,非生长激素Pomc、Lhb、Tshb、Cga和Prl的表达增加(1.73-6.7倍)。相反,突变雌性sox2阳性干细胞簇的干细胞标记物表达减少,垂体激素基因表达增加。这些数据支持了一个模型,即女性垂体生长激素细胞群的发育和/或维持需要瘦素营养信号,并且还表明,在缺乏正常的生长激素成熟的情况下,垂体干细胞被推向过早分化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Ablation of Leptin Receptor Signaling Alters Somatotrope Transcriptome Maturation in Female Mice.

Anterior pituitary somatotropes respond to metabolic signals from the adipokine leptin to optimize functional responses to the body's nutritional state via growth hormone (GH) secretion. Molecular targets of leptin in pituitary somatotropes include GH, the GH-releasing hormone receptor (GHRHR), and, in females, the transcription factor POU1F1, all of which are dependent on leptin stimulation for expression. To identify the trophic mechanisms underlying leptin action upon somatotropes, we analyzed single-cell gene transcriptomes comparing pituitaries from a female mouse model bearing somatotropes lacking leptin receptors (LEPR-null mutants) and control pituitaries. Computational clustering of results identified all common pituitary cell types and differentially expressed genes. Mutant female somatotrope clusters showed decreased levels of Gh and Htatsf1 mRNA, which was also reduced in mutant pituitaries lacking Prop1 or POU1F1. Mutant somatotropes also showed increased expression of markers for pituitary stem and progenitor cells (eg, Sox9) and increased (1.73-6.7 fold) expression of nonsomatotrope hormones, Pomc, Lhb, Tshb, Cga, and Prl. Conversely, the mutant female Sox2-positive stem cell cluster showed decreased expression of markers for stem cells and increased expression of pituitary hormone genes. The data support a model in which the female pituitary somatotrope cell population's development and/or maintenance requires leptin trophic signals and also suggests that, in the absence of normal somatotrope maturation, pituitary stem cells are driven towards premature differentiation.

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来源期刊
Endocrinology
Endocrinology 医学-内分泌学与代谢
CiteScore
8.10
自引率
4.20%
发文量
195
审稿时长
2-3 weeks
期刊介绍: The mission of Endocrinology is to be the authoritative source of emerging hormone science and to disseminate that new knowledge to scientists, clinicians, and the public in a way that will enable "hormone science to health." Endocrinology welcomes the submission of original research investigating endocrine systems and diseases at all levels of biological organization, incorporating molecular mechanistic studies, such as hormone-receptor interactions, in all areas of endocrinology, as well as cross-disciplinary and integrative studies. The editors of Endocrinology encourage the submission of research in emerging areas not traditionally recognized as endocrinology or metabolism in addition to the following traditionally recognized fields: Adrenal; Bone Health and Osteoporosis; Cardiovascular Endocrinology; Diabetes; Endocrine-Disrupting Chemicals; Endocrine Neoplasia and Cancer; Growth; Neuroendocrinology; Nuclear Receptors and Their Ligands; Obesity; Reproductive Endocrinology; Signaling Pathways; and Thyroid.
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