Hinshelwood Margaret M, Repa Joyce J, Shelton John M, Richardson James A, Mangelsdorf David J, Mendelson Carole R
Department of Obstetrics and Gynecology, University of Texas Southwestern Medical Center, 5323 Harry Hines Blvd, Dallas, TX, 75390-9038, USA.
Mol Cell Endocrinol. 2003 Sep 30;207(1-2):39-45. doi: 10.1016/s0303-7207(03)00257-0.
Steroid biosynthesis in ovary is enhanced by the orphan nuclear receptor, steroidogenic factor-1 (SF-1); however, we reported that liver receptor homolog-1 (LRH-1), a closely related receptor to SF-1, is also expressed in mouse ovary. To further investigate the role of LRH-1 in mouse ovary, we used in situ hybridization to identify the cell types that express LRH-1 versus SF-1, and carried out functional studies to determine the role of LRH-1 in the regulation of the human (h) ovary-specific CYP19 promoter. LRH-1 expression was found to be abundant and highly restricted to cells involved in estrogen biosynthesis-granulosa cells during the estrous cycle, and in corpora lutea (CL) of pregnancy. In contrast, SF-1 was expressed most highly in C(19)-steroid-producing theca cells and interstitium, and at low levels in granulosa and luteal cells. Transfection studies using granulosa cells demonstrated that LRH-1 is a potent regulator of both basal and forskolin-induced transcription of the ovary-specific hCYP19 promoter. This activity was dependent upon two nuclear receptor half-sites within the proximal hCYP19 promoter. Based on these findings, we propose that LRH-1 plays an important role as a competence factor in regulating aromatase, and thus estrogen biosynthesis, in ovary.
孤儿核受体类固醇生成因子-1(SF-1)可增强卵巢中的类固醇生物合成;然而,我们报道过,与SF-1密切相关的受体肝受体同源物-1(LRH-1)也在小鼠卵巢中表达。为了进一步研究LRH-1在小鼠卵巢中的作用,我们使用原位杂交来鉴定表达LRH-1和SF-1的细胞类型,并进行功能研究以确定LRH-1在调控人(h)卵巢特异性CYP19启动子中的作用。结果发现,在发情周期中,LRH-1的表达丰富且高度局限于参与雌激素生物合成的细胞——颗粒细胞,以及妊娠黄体(CL)中。相比之下,SF-1在产生C19类固醇的卵泡膜细胞和间质中表达最高,而在颗粒细胞和黄体细胞中表达水平较低。使用颗粒细胞进行的转染研究表明,LRH-1是卵巢特异性hCYP19启动子基础转录和福斯可林诱导转录的有效调节因子。这种活性取决于近端hCYP19启动子内的两个核受体半位点。基于这些发现,我们认为LRH-1作为一种能力因子,在调节卵巢中的芳香化酶从而调节雌激素生物合成方面发挥着重要作用。