Differences of lipid membrane modulation and oxidative stress by digoxin and 21-benzylidene digoxin

Lilian N D Silva1, Marco Tulio C Pessoa1, Silmara L G Alves2

  • 1Laboratório de Bioquímica Celular, Universidade Federal de São João del Rei, Campus Centro-Oeste Dona Lindu, Divinópolis, MG, Brazil.

Insights

21-benzylidene digoxin (21-BD) uniquely affects Na,K-ATPase activity and membrane lipids in cancer cells. Its actions on reactive oxygen species (ROS) differ from digoxin, suggesting 21-BD

Area of Science:

  • Biochemistry
  • Cell Biology
  • Pharmacology

Background:

  • Cardiotonic steroids (CTS) interact with Na,K-ATPase, impacting cellular signaling and exhibiting anticancer properties.
  • Digoxin, a CTS, is used for heart conditions and shows antiproliferative effects on cancer cells.
  • 21-benzylidene digoxin (21-BD), a digoxin derivative, uniquely activates Na,K-ATPase, unlike its parent compound.

Purpose of the Study:

  • To investigate the mechanism behind the distinct effects of 21-BD on Na,K-ATPase activity and cellular components.
  • To determine if 21-BD's effects are mediated by reactive oxygen species (ROS) generation.

Main Methods:

  • Assessed Na,K-ATPase activity and membrane expression in HeLa cancer cells treated with varying doses of 21-BD and digoxin.
  • Quantified changes in membrane cholesterol and phospholipid content.
  • Analyzed markers of ROS generation, including lipid peroxidation (TBARS), reduced glutathione (GSH), catalase (CAT), and superoxide dismutase (SOD).

Main Results:

  • Low-dose 21-BD activated Na,K-ATPase, while high-dose 21-BD inhibited it, without affecting membrane expression.
  • High-dose 21-BD increased membrane cholesterol and phospholipids in an intact cell-dependent manner.
  • Both digoxin and 50µM 21-BD decreased TBARS and SOD activity, while GSH and CAT remained unaffected, indicating altered ROS balance.

Conclusions:

  • 21-BD modulates Na,K-ATPase activity and membrane lipid content in cancer cells through mechanisms not dependent on ROS generation.
  • The observed alterations in ROS-related markers by 21-BD and digoxin suggest a complex interplay between CTS and oxidative stress pathways.

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