Anti-angiogenic drugs: direct anti-cancer agents with mitochondrial mechanisms of action

Lewis A Quayle1,2, Maria G Pereira3, Gerjan Scheper1

  • 1School of Life Sciences, Joseph Banks Laboratories, University of Lincoln, Lincoln, LN6 7DL, U.K.

Oncotarget
|November 29, 2017
PubMed

Insights

Established anti-angiogenesis drugs like combretastatin A4, thalidomide, OGT 2115, and tranilast directly target mitochondria. These drugs modulate mitochondrial function, offering a potential new strategy for cancer therapy by impacting energy supply.

Area of Science:

  • Biochemistry
  • Pharmacology
  • Cancer Biology

Background:

  • Mitochondrial electron transport chain components are emerging therapeutic targets.
  • Mitochondria are crucial for cancer cell energy supply, supporting both angiogenesis and tumorigenesis.
  • Targeting mitochondria presents a promising strategy for cancer treatment.

Purpose of the Study:

  • To investigate if established anti-angiogenesis drugs (combretastatin A4, thalidomide, OGT 2115, tranilast) exert direct anti-cancer effects by targeting mitochondria.
  • To determine the specific mitochondrial targets and mechanisms of action for these drugs.

Main Methods:

  • Drug cytotoxicity assessed using the MTT assay.
  • Mitochondrial function evaluated in isolated mitochondria via polarography (oxygen consumption), fluorimetry (membrane potential), and enzymatic assays (complex I-IV activities).

Main Results:

  • Combretastatin A4, OGT 2115, and tranilast decreased mitochondrial oxygen consumption.
  • OGT 2115 and tranilast reduced mitochondrial membrane potential and Complex I activity.
  • OGT 2115 inhibited Complex II-III activity; Combretastatin A4, thalidomide, and tranilast did not.
  • Combretastatin A4, thalidomide, and OGT 2115 showed bi-phasic effects on Complex IV activity.

Conclusions:

  • Combretastatin A4, thalidomide, OGT 2115, and tranilast function as mitochondrial modulators.
  • OGT 2115 and tranilast act as mitochondrial inhibitors, reducing cell viability by decreasing membrane potential and oxygen consumption.
  • These findings support the potential of targeting mitochondrial function for cancer therapy.

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