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Establishment of A Reversibly Inducible Porcine Granulosa Cell Line

颗粒细胞 胆固醇侧链裂解酶 生物 细胞培养 类固醇生成急性调节蛋白 卵巢 甾体生物合成 细胞生长 细胞生物学 卵泡液 细胞色素P450 男科 分子生物学 内科学 卵母细胞 内分泌学 基因表达 激素 类固醇 基因 生物化学 医学 遗传学 新陈代谢 胚胎
作者
Yinshan Bai,Cui Zhu,Feng Mao,Bo Pan,Shouquan Zhang,Xiaoshu Zhan,Huifang Chen,Bingyun Wang,Julang Li
出处
期刊:Cells [MDPI AG]
卷期号:9 (1): 156-156 被引量:11
标识
DOI:10.3390/cells9010156
摘要

Granulosa cells (GCs) are the key components of ovarian follicles for regulating oocyte maturation. Previous established GC lines have allowed prolonged proliferation, but lost some physiological features owing to long-term immortalization. This study was to establish an induced immortal porcine GC line with reversible proliferation status by the tetracycline inducible (Tet-on) 3G system. Our conditional immortal porcine GCs (CIPGCs) line steadily propagated for at least six months and displayed primary GC morphology when cultured in the presence of 50 ng/mL doxycycline [Dox (+)]. Upon Dox withdrawal [Dox (–)], Large T-antigen expression, reflected by mCherry fluorescence, gradually became undetectable within 48 h, accompanied by less proliferation and size increase. The levels of estradiol and progesterone, and the expression of genes associated with steroid production, such as CYP11A1 (cytochrome P450 family 11), 3β-HSD (3β-hydroxysteroid dehydrogenase), StAR (steroidogenic acute regulatory protein), and CYP19A1 (cytochrome P450 family 19 subfamily a member 1), were all significantly higher in the Dox (–) group than Dox (+) group. The CIPGCs could switch into a proliferative state upon Dox induction. Interestingly, the expression of StAR and CYP19A1 in the CIPGCs (–Dox) was significantly increased by adding porcine follicular fluid (PFF) to mimic an ovary follicle environment. Moreover, PFF priming the CIPGCs in Dox (–) group resulted in similar estradiol production as that of primary GC, and enabled this cell line to respond to gonadotrophins in estradiol production. Collectively, we have established an inducible immortal porcine GC line, which offers a unique and valuable model for future research on the regulation of ovarian functions.
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