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Blockade of T-type Ca2+ channels disrupts mitochondrial function and follicle development by inhibiting the PI3K/AKT
Xiuling Zhao1, Lei Wang1, Shiqin Huang1
1Institute of Reproductive Medicine, Medical School, Nantong University, Jiangsu, China.
Abstract:
Calcium signaling through T-type channels is essential for ovarian function. This study reveals that blocking these channels disrupts follicle development and hormone production by impairing mitochondrial function and suppressing the phosphatidylinositol 3-kinase/protein kinase B pathway in mice. AbstractCalcium (Ca2+) functions as a critical secondary messenger in cellular signaling and is essential for maintaining ovarian function and promoting oocyte maturation. However, the contribution of T-type voltage-gated calcium channels (VGCCs) to ovarian follicle development remains unclear. To investigate this, we administered flunarizine (FNZ), a potent T-type VGCCs antagonist, to 4-6-week-old female mice via intraperitoneal injection at doses of 0, 3, or 30 mg/kg/day for 7 days. FNZ exposure significantly impaired ovarian morphology, disrupted folliculogenesis, and induced estrous cycle irregularities, concomitant with a marked reduction in serum 17β-estradiol (E2) levels. FNZ led to diminished intracellular Ca2+ levels and mitochondrial dysfunction, resulting in attenuated ATP production. Notably, ovarian tissues exhibited elevated DNA damage, as indicated by increased γH2AX expression. Transcriptomic analysis revealed pronounced alterations in fibroblast growth factor 1 signaling-related genes. Furthermore, FNZ inhibit activation of protein kinase B (p-AKT), an effect that was rescued by recilisib, a specific activator of phosphatidylinositol 3-kinase (PI3K)/AKT. In conclusion, our study establishes that pharmacological inhibition of T-type VGCCs disrupts hormonal secretion and follicular development in adolescent mice, likely through modulation of the PI3K/AKT signaling axis.
Insights
Flunarizine (FNZ), a T-type calcium channel blocker, impairs ovarian function and follicle development in mice by disrupting calcium signaling and activating DNA damage pathways. This highlights the role of T-type channels in reproductive health.
Area of Science:
- Reproductive Biology
- Cellular Signaling
- Pharmacology
Background:
- Calcium ions (Ca2+) are vital secondary messengers in cellular signaling, crucial for ovarian function and oocyte maturation.
- The specific role of T-type voltage-gated calcium channels (VGCCs) in ovarian follicle development is not well understood.
Purpose of the Study:
- To investigate the impact of T-type VGCCs inhibition on ovarian function and follicle development in adolescent mice.
- To elucidate the underlying molecular mechanisms, including signaling pathways and cellular damage.
Main Methods:
- Administration of flunarizine (FNZ), a T-type VGCCs antagonist, to female mice at varying doses.
- Assessment of ovarian morphology, folliculogenesis, estrous cycles, and serum hormone levels (17β-estradiol).
- Evaluation of intracellular calcium levels, mitochondrial function, ATP production, DNA damage (γH2AX), and gene expression (FGF1 signaling, PI3K/AKT pathway).
Main Results:
- FNZ treatment impaired ovarian morphology, disrupted folliculogenesis, and caused estrous cycle irregularities.
- Reduced serum 17β-estradiol levels, diminished intracellular Ca2+ ([Ca2+]i), mitochondrial dysfunction, and decreased ATP production were observed.
- Increased DNA damage (γH2AX), altered FGF1 signaling, and inhibited PI3K/AKT activation were noted, with the latter rescued by recilisib.
Conclusions:
- Pharmacological inhibition of T-type VGCCs disrupts hormonal secretion and follicular development in adolescent mice.
- The PI3K/AKT signaling axis is implicated in the mechanism by which T-type VGCCs modulate ovarian function.
- T-type VGCCs are critical regulators of ovarian physiology and reproductive health.
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