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Effect of antitumor diarylsulfonylureas on in vivo and in vitro mitochondrial structure and functions

J H Thakar1, C Chapin, R H Berg

  • 1Department of Biochemical and Clinical Pharmacology, St. Jude Children's Research Hospital, Memphis, Tennessee 38101.

Cancer Research
|December 1, 1991
PubMed

Insights

Diarylsulfonylureas, like ISCU and MPCU, disrupt mitochondrial function by uncoupling oxidative phosphorylation, leading to reduced cellular ATP and potential cytotoxicity in cancer cells. This mechanism explains their oncolytic activity against tumors.

Area of Science:

  • Biochemistry
  • Cell Biology
  • Pharmacology

Background:

  • Diarylsulfonylureas are emerging oncolytic agents with demonstrated efficacy against various tumors.
  • Previous research indicates these compounds accumulate in mitochondria, inducing morphological alterations.

Purpose of the Study:

  • To elucidate the mechanism of action of diarylsulfonylureas, specifically ISCU and MPCU.
  • To investigate their impact on mitochondrial morphology, rhodamine 123 uptake, and oxidative phosphorylation.

Main Methods:

  • Morphometric analysis of mitochondria in GC3/c1 cells treated with ISCU.
  • Flow cytometry to assess rhodamine 123 uptake in GC3/c1 cells.
  • Studying oxidative phosphorylation in isolated mouse liver mitochondria using pyruvate-malate and succinate substrates.

Main Results:

  • ISCU treatment led to a significant increase in mitochondrial size and reduced rhodamine 123 uptake in GC3/c1 cells.
  • Both ISCU and MPCU uncoupled oxidative phosphorylation in isolated mitochondria, increasing State 4 oxygen consumption and reducing ATP synthesis.
  • ISCU impaired succinate oxidation, while MPCU had minimal effect on succinate oxidation.

Conclusions:

  • Diarylsulfonylureas disrupt mitochondrial function by uncoupling oxidative phosphorylation, potentially lowering cellular ATP levels.
  • This mitochondrial dysfunction is a likely contributor to the observed cytotoxicity of ISCU and MPCU in cancer cells.
  • The findings provide mechanistic insights into the oncolytic properties of diarylsulfonylureas.

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