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.

Reproduction (Cambridge, England)
|February 28, 2026
PubMed

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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