Endoplasmic reticulum (ER) stress triggers Hax1-dependent mitochondrial apoptotic events in cardiac cells

Eltyeb Abdelwahid1, Haijie Li2, Jianxin Wu2

  • 1Feinberg Cardiovascular Research Institute, Feinberg School of Medicine, Northwestern University, 303 E. Chicago Ave., Chicago, IL, 60611, USA. Eltyeb.abdelwahid@northwestern.edu.

Insights

HCLS1-associated protein X-1 (Hax1) protects heart cells from ER stress-induced apoptosis. Overexpressing Hax1 prevents mitochondrial damage and cell death, offering a potential therapeutic target for heart disease.

Area of Science:

  • Cardiovascular Biology
  • Cell Death Mechanisms
  • Mitochondrial Dynamics

Background:

  • Cardiomyocyte apoptosis contributes to heart diseases like ischemic heart disease and cardiac failure.
  • Endoplasmic reticulum (ER) stress is implicated in apoptosis, but its mitochondrial effects in cardiac cells are not fully understood.
  • The prosurvival protein HCLS1-associated protein X-1 (Hax1) is linked to heart disease, mitochondrial function, and apoptosis resistance.

Purpose of the Study:

  • To investigate the role of Hax1 in cardiac cells undergoing ER stress.
  • To determine if Hax1 influences mitochondrial integrity and apoptosis during ER stress.

Main Methods:

  • Overexpression of Hax1 in cardiac cells subjected to ER stress induced by Tunicamycin.
  • Assessment of cell death parameters and mitochondrial alterations, including mitochondrial fission, mitofusin levels, membrane potential, and reactive oxygen species (ROS) production.

Main Results:

  • Hax1 expression was downregulated in cardiac cells experiencing ER stress.
  • Overexpression of Hax1 conferred protection against Tunicamycin-induced ER stress.
  • Hax1 prevented mitochondrial fission, MFN1/MFN2 downregulation, loss of mitochondrial membrane potential, and ROS production.

Conclusions:

  • Hax1 inhibits ER stress-induced apoptosis at both pre- and post-mitochondrial stages in cardiac cells.
  • Hax1 represents a potential therapeutic target for developing novel agents to prevent cell death in heart disease.

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