Hypo-osmolarity induces apoptosis resistance via TRPV2-mediated AKT-Bcl-2 pathway

Hayato Urushima1, Tsutomu Matsubara1, Masaaki Miyakoshi2

  • 1Department of Anatomy and Regenerative Biology, Graduate School of Medicine, Osaka Metropolitan University, Osaka, Japan.

Insights

Hyponatremia in cirrhosis patients may promote liver cancer by causing hypo-osmolality. This condition enhances apoptosis resistance in hepatocellular carcinoma (HCC) cells via mechanotransduction, activating AKT signaling and upregulating Bcl-2.

Area of Science:

  • Hepatology and Cancer Biology
  • Molecular Mechanisms of Disease
  • Mechanobiology

Background:

  • Cirrhosis is associated with molecular alterations that can accelerate cancer development.
  • Hyponatremia, a common complication in advanced cirrhosis, leads to hypo-osmolality.
  • Mechanotransduction is increasingly recognized as a factor in cellular dysfunction.

Purpose of the Study:

  • To investigate the role of hypo-osmolality-induced mechanotransduction in hepatocellular carcinoma (HCC) progression under cirrhotic conditions.
  • To determine if hypotonic conditions influence apoptosis resistance in HCC cells.

Main Methods:

  • Used HepG2 HCC cell line in a serum-deprivation-induced apoptosis model.
  • Manipulated culture medium osmolality using sodium chloride concentration.
  • Assessed apoptosis resistance, Bcl-2 protein levels, AKT signaling pathway, and calcium influx via TRPV2.

Main Results:

  • Hypotonic conditions induced apoptosis resistance in HCC cells by upregulating the antiapoptotic protein Bcl-2.
  • Hypotonicity enhanced AKT signaling, which led to increased Bcl-2 levels.
  • AKT signaling enhancement was mediated by intracellular calcium influx through the mechanosensor TRPV2.

Conclusions:

  • Hypo-osmolarity, induced by hyponatremia in cirrhosis, promotes HCC progression through mechanotransduction.
  • The pathway involves TRPV2-mediated calcium influx, activating AKT signaling and conferring apoptosis resistance.
  • Findings suggest a novel link between cirrhosis-related hyponatremia and liver cancer development.

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