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Updated: Jul 6, 2026

A Tissue Culture Model of Estrogen-producing Primary Bovine Granulosa Cells
Published on: September 6, 2018
Nitric oxide regulates steroid synthesis by bovine antral granulosa cells in a chemically defined medium
M R Faes1, M C Caldas-Bussiere, K S Viana
1Laboratório de Reprodução e Melhoramento Genético Animal, Universidade Estadual do Norte Fluminense Darcy Ribeiro, Centro de Ciências e Tecnologias Agropecuárias, Parque Califórnia, Campos dos Goytacazes, RJ 28013-602, Brazil.
Abstract:
Nitric oxide (NO) in bovine ovary has been characterized as one of the controllers of granulosa cells' (GC) steroidogenesis and apoptosis. One of the pathways used by NO to have these effects is cGMP. The objectives of the present study were to verify the effect of sodium nitroprusside (SNP), a NO donor, on steroidogenesis, cell viability (mitochondrial activity) and GC cell cycle distribution and if this effect occurs by the NO-cGMP signaling pathway with the addition of SNP with or without 1H-[1,2,3] oxadiaziolo[4,3a]quinoxaline-1-one (ODQ), a selective soluble guanylate cyclase inhibitor. The antral GC from 3 to 5mm diameter cattle follicles was cultured without treatment (control), with ODQ (10(-4)M) and 10(-5), 10(-3) and 10(-1)M SNP with or without ODQ for 24h. Nitrate/nitrite (NO(3)(-)/N0(2)(-)) concentrations were evaluated by Griess method, progesterone (P(4)) and 17beta-estradiol (E(2)) concentrations by chemiluminescence, viability and cell cycle stage by MTT method (3-[4,5-dimethylthiazol-2yl]-2,3 dipheniltetrazolium bromide) and flow cytometry, respectively. Nitrate/nitrite concentration in culture medium increased (P<0.05) in a dose-dependent manner according to SNP concentration added to the culture medium. The GC cultured without treatment, with ODQ and with 10(-5)M SNP in the presence or absence of ODQ developed into cell aggregates and did not vary in cell viability (P>0.05), while GC cultured with 10(-3) and 10(-1)M SNP with or without ODQ presented disorganized GC aggregates or did not develop into cell aggregates and also had substantially decreased cell viability (mitochondrial activity inhibition) and steroids synthesis (P<0.05), and effects were not reversed with us of ODQ. Most GC cultured without treatment (control) or with ODQ, 10(-5) and 10(-3)M SNP with or without ODQ were in the G0/G1 (80-75%) stage and in a lesser proportion (20-25%) in the S+G2/M stage of the cell cycle, while the 10(-1)M SNP treatment resulted in GC in G1 phase arrest. The treatment with 10(-5)M SNP increased (P<0.05) E(2) synthesis and inhibited (P<0.05) progesterone synthesis. The addition of ODQ reversed (P<0.05) the stimulatory effect of 10(-5)M SNP treatment on E(2), but not on P(4) synthesis (P>0.05). These results demonstrated that E(2) synthesis by antral GC from small follicles is modulated by lesser NO concentrations via the cGMP pathway, but not P(4) while steroids inhibition cGMP pathway independent, mitochondrial damage and the interference on cell cycle progression caused by greater NO concentration can lead to cell death.
Insights
Nitric oxide (NO) affects bovine granulosa cells (GC) differently based on concentration. Low NO enhances estradiol synthesis via cGMP, while high NO inhibits steroidogenesis and causes cell death independently of cGMP.
Area of Science:
- Reproductive Biology
- Cellular Signaling
- Endocrinology
Background:
- Nitric oxide (NO) is a key regulator of granulosa cell (GC) steroidogenesis and apoptosis in the bovine ovary.
- The NO-cGMP signaling pathway is implicated in mediating NO's effects on GC function.
- Understanding NO's dose-dependent effects is crucial for comprehending ovarian physiology.
Purpose of the Study:
- To investigate the impact of sodium nitroprusside (SNP), an NO donor, on bovine GC steroidogenesis, viability, and cell cycle.
- To determine if these effects are mediated through the NO-cGMP signaling pathway using ODQ, a guanylate cyclase inhibitor.
- To elucidate the dose-dependent mechanisms of NO action in bovine granulosa cells.
Main Methods:
- Bovine antral GCs were cultured with varying concentrations of SNP (10(-5)M to 10(-1)M) with or without ODQ.
- Nitrate/nitrite levels, progesterone (P4) and 17beta-estradiol (E2) concentrations were measured.
- Cell viability (MTT assay) and cell cycle distribution (flow cytometry) were assessed.
Main Results:
- SNP increased nitrate/nitrite levels in a dose-dependent manner.
- Low SNP (10(-5)M) enhanced E2 synthesis via the cGMP pathway and inhibited P4 synthesis independently.
- High SNP (10(-3)M and 10(-1)M) decreased cell viability, inhibited steroidogenesis, and caused G1 phase arrest, independent of the cGMP pathway.
Conclusions:
- Estradiol synthesis in bovine GCs is modulated by low NO concentrations through the cGMP pathway.
- High NO concentrations induce mitochondrial damage, cell cycle arrest, and inhibit steroidogenesis via cGMP-independent mechanisms, leading to cell death.
- NO exhibits complex, dose-dependent regulatory roles in bovine granulosa cell function and survival.
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