NR3C1/GLMN-Mediated FKBP12.6 Ubiquitination Disrupts Calcium Homeostasis and Impairs Mitochondrial Quality Control in

Jingze Cong1, Lihui Liu1, Rui Shi1

  • 1Hebei Key Laboratory of Forensic Medicine, Collaborative Innovation Center of Forensic Medical Molecular Identification, Department of Forensic Medicine, Hebei Medical University, Shijiazhuang 050017, China.

Insights

Excessive stress impairs heart function by disrupting calcium regulation through the NR3C1/GLMN/FKBP12.6 pathway, leading to mitochondrial damage and cardiac injury in mice.

Area of Science:

  • Cardiology
  • Molecular Biology
  • Stress Physiology

Background:

  • Excessive stress disrupts cardiac homeostasis, leading to dysfunction and cardiovascular disease.
  • The precise molecular mechanisms underlying stress-induced cardiac damage remain poorly understood.

Purpose of the Study:

  • To elucidate how stress induces calcium dysregulation via the NR3C1/GLMN/FKBP12.6 pathway.
  • To investigate the contribution of this pathway to cardiac dysfunction and injury.

Main Methods:

  • Mouse models of acute and chronic restraint stress.
  • Morphological, functional, and hormonal assessments.
  • Transmission electron microscopy, Western blotting, ChIP-qPCR, and siRNA knockdown.

Main Results:

  • Stress exposure reduced left ventricular ejection fraction and increased ventricular wall thickening.
  • Stress disrupted mitochondrial quality control, impairing fusion and biogenesis while promoting fission and autophagy.
  • Stress activated NR3C1, repressing GLMN, preventing FKBP12.6 degradation, causing calcium leakage, and damaging cardiomyocytes.

Conclusions:

  • Stress induces myocardial damage through NR3C1/GLMN-mediated FKBP12.6 ubiquitination.
  • This pathway disrupts calcium homeostasis and mitochondrial quality control, contributing to stress-induced cardiomyopathy.

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