NRF2-TERT-ACSL4 pathway inhibits ferroptosis and regulates cytoskeletal dynamics to mitigate ovarian aging

Yaxin Chen1, Jing Zhang2, Shuangshuang Cui1

  • 1Department of Obstetrics and Gynecology, NHC Key Laboratory of Study on Abnormal Gametes and Reproductive Tract, the First Affiliated Hospital of Anhui Medical University, Hefei, 230022, Anhui, China; Engineering Research Center of Biopreservation and Artificial Organs, Ministry of Education, Hefei, 230032, Anhui, China; Anhui Province Key Laboratory of Reproductive Disorders and Obstetrics and Gynecology Diseases, Hefei, 230032, Anhui, China.

Insights

Static magnetic fields protect against ovarian aging by activating the NRF2/TERT/ACSL4 pathway. This intervention preserves ovarian function by reducing ferroptosis and restoring cytoskeletal organization.

Area of Science:

  • Reproductive Biology
  • Cellular Aging
  • Biophysics

Background:

  • Ovarian aging leads to reproductive decline, linked to oxidative stress, ferroptosis, and cytoskeletal issues.
  • Molecular mechanisms of ferroptosis and therapeutic interventions for ovarian aging are not fully understood.

Purpose of the Study:

  • Investigate the NRF2/TERT/ACSL4 axis in ovarian aging-related ferroptosis and cytoskeletal changes.
  • Explore static magnetic field (SMF) as a non-pharmacological method to activate NRF2 signaling and mitigate ovarian aging.

Main Methods:

  • Utilized naturally aged mice and D-galactose-induced senescent cells.
  • Employed histological, biochemical, mitochondrial, and molecular analyses.
  • Validated findings using NRF2 modulators (ML385, SFN) and telomerase inhibitor (BIBR1532).

Main Results:

  • SMF activated the NRF2/TERT/ACSL4 axis, reducing ovarian senescence and ferroptosis.
  • SMF maintained iron homeostasis and restored F-actin cytoskeletal organization.
  • NRF2 directly upregulated TERT expression; p62 phosphorylation facilitated NRF2 activation, triggered by SMF.

Conclusions:

  • Activation of the NRF2/TERT/ACSL4 pathway is crucial for protecting against ovarian aging.
  • This pathway coordinates ferroptosis suppression and cytoskeletal remodeling.
  • SMF exposure offers a potential biophysical strategy to preserve ovarian function during aging.

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