Krystal Allen-Worthington, Jianjun Xie, Jessica L Brown, Alexa M Edmunson, Abigail Dowling, Amy M Navratil, Kurt Scavelli, Hojean Yoon, Do-Geun Kim, Margaret S Bynoe, Iain Clarke, Mark S Roberson
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The catalytic subunits of the F1 domain were validated by immunoprecipitation, flow cytometry, and cell surface biotinylation studies demonstrating that this complex was present at the plasma membrane associated with the GnRHR. The F1 catalytic domain faces the extracellular space and catalyzes ATP synthesis when presented with ADP in normal mouse pituitary explants and a gonadotrope cell line. Steady-state extracellular ATP accumulation was blunted by coadministration of inhibitory factor 1, limiting inorganic phosphate in the media, and by chronic stimulation of the GnRHR. Steady-state extracellular ATP accumulation was enhanced by pharmacological inhibition of ecto-nucleoside triphosphate diphosphohydrolases. Kisspeptin administration induced coincident GnRH and ATP release from the median eminence into the hypophyseal-portal vasculature in ovariectomized sheep. Elevated levels of extracellular ATP augmented GnRH-induced secretion of LH from pituitary cells in primary culture, which was blocked in media containing low inorganic phosphate supporting the importance of extracellular ATP levels to gonadotrope cell function. 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引用次数: 0
摘要
哺乳动物的生育能力需要在下丘脑-垂体-性腺轴内进行适当的交流,而 GnRH 受体(GnRHR)是这种交流的核心渠道。GnRHR 位于离散的膜筏中,GnRH 的信号传递需要膜筏的占据。本研究利用免疫沉淀和质谱法确定了与 GnRHR 和关键膜筏标记 flotillin-1 相关的膜筏中存在的肽。这些研究揭示了来自 F0F1 ATP 合酶复合物的多肽。通过免疫沉淀、流式细胞仪和细胞表面生物素化研究验证了 F1 结构域的催化亚基,证明该复合物存在于与 GnRHR 相关的质膜上。F1 催化结构域面向细胞外空间,在正常小鼠垂体外植体和促性腺激素细胞系中与 ADP 结合时催化 ATP 合成。通过联合使用抑制因子 1、限制培养基中的无机磷酸盐以及长期刺激 GnRHR,稳态细胞外 ATP 积累被减弱。外核苷三磷酸二氢水解酶的药理抑制作用增强了细胞外ATP的稳态积累。在卵巢切除的绵羊体内,基斯肽诱导GnRH和ATP同时从正中突释放到下丘脑-门静脉。细胞外 ATP 水平的升高增强了 GnRH 诱导的垂体细胞原代培养液中 LH 的分泌,这种分泌在含有低无机磷酸盐的培养基中被阻断,从而证明了细胞外 ATP 水平对促性腺激素细胞功能的重要性。这些研究表明,促性腺激素具有在细胞外空间代谢 ATP 的内在能力,细胞外 ATP 可作为 GnRH 诱导的 LH 分泌的调节剂。
The F0F1 ATP Synthase Complex Localizes to Membrane Rafts in Gonadotrope Cells.
Fertility in mammals requires appropriate communication within the hypothalamic-pituitary-gonadal axis and the GnRH receptor (GnRHR) is a central conduit for this communication. The GnRHR resides in discrete membrane rafts and raft occupancy is required for signaling by GnRH. The present studies use immunoprecipitation and mass spectrometry to define peptides present within the raft associated with the GnRHR and flotillin-1, a key raft marker. These studies revealed peptides from the F0F1 ATP synthase complex. The catalytic subunits of the F1 domain were validated by immunoprecipitation, flow cytometry, and cell surface biotinylation studies demonstrating that this complex was present at the plasma membrane associated with the GnRHR. The F1 catalytic domain faces the extracellular space and catalyzes ATP synthesis when presented with ADP in normal mouse pituitary explants and a gonadotrope cell line. Steady-state extracellular ATP accumulation was blunted by coadministration of inhibitory factor 1, limiting inorganic phosphate in the media, and by chronic stimulation of the GnRHR. Steady-state extracellular ATP accumulation was enhanced by pharmacological inhibition of ecto-nucleoside triphosphate diphosphohydrolases. Kisspeptin administration induced coincident GnRH and ATP release from the median eminence into the hypophyseal-portal vasculature in ovariectomized sheep. Elevated levels of extracellular ATP augmented GnRH-induced secretion of LH from pituitary cells in primary culture, which was blocked in media containing low inorganic phosphate supporting the importance of extracellular ATP levels to gonadotrope cell function. These studies indicate that gonadotropes have intrinsic ability to metabolize ATP in the extracellular space and extracellular ATP may serve as a modulator of GnRH-induced LH secretion.
期刊介绍:
Molecular Endocrinology provides a forum for papers devoted to describing molecular mechanisms by which hormones and related compounds regulate function. It has quickly achieved a reputation as a high visibility journal with very rapid communication of cutting edge science: the average turnaround time is 28 days from manuscript receipt to first decision, and accepted manuscripts are published online within a week through Rapid Electronic Publication. In the 2008 Journal Citation Report, Molecular Endocrinology is ranked 16th out of 93 journals in the Endocrinology and Metabolism category, with an Impact Factor of 5.389.