Artemisinin dimer anticancer activity correlates with heme‐catalyzed reactive oxygen species generation and endoplasmic reticulum stress induction
Open Access
- 14 July 2009
- journal article
- research article
- Published by Wiley in International Journal of Cancer
- Vol. 125 (6) , 1266-1275
- https://doi.org/10.1002/ijc.24496
Abstract
Analogs of the malaria therapeutic, artemisinin, possess in vitro and in vivo anticancer activity. In this study, two dimeric artemisinins (NSC724910 and 735847) were studied to determine their mechanism of action. Dimers were >1,000 fold more active than monomer and treatment was associated with increased reactive oxygen species (ROS) and apoptosis induction. Dimer activity was inhibited by the antioxidant L‐NAC, the iron chelator desferroxamine and exogenous hemin. Similarly, induction of heme oxygenase (HMOX) with CoPPIX inhibited activity, whereas inhibition of HMOX with SnPPIX enhanced it. These results emphasize the importance of iron, heme and ROS in activity. Microarray analysis of dimer treated cells identified DNA damage, iron/heme and cysteine/methionine metabolism, antioxidant response, and endoplasmic reticulum (ER) stress as affected pathways. Detection of an ER‐stress response was relevant because in malaria, artemisinin inhibits pfATP6, the plasmodium orthologue of mammalian sarcoplasmic/endoplasmic reticulum Ca2+‐ATPases (SERCA). A comparative study of NSC735847 with thapsigargin, a specific SERCA inhibitor and ER‐stress inducer showed similar behavior in terms of transcriptomic changes, induction of endogenous SERCA and ER calcium mobilization. However, thapsigargin had little effect on ROS production, modulated different ER‐stress proteins and had greater potency against purified SERCA1. Furthermore, an inactive derivative of NSC735847 that lacked the endoperoxide had identical inhibitory activity against purified SERCA1, suggesting that direct inhibition of SERCA has little inference on overall cytotoxicity. In summary, these data implicate indirect ER‐stress induction as a central mechanism of artemisinin dimer activity. © 2009 UICCKeywords
This publication has 53 references indexed in Scilit:
- Artemisinin Blocks Prostate Cancer Growth and Cell Cycle Progression by Disrupting Sp1 Interactions with the Cyclin-dependent Kinase-4 (CDK4) Promoter and Inhibiting CDK4 Gene ExpressionJournal of Biological Chemistry, 2009
- Qinghaosu (Artemisinin): The Price of SuccessScience, 2008
- Microarray expression profiles of angiogenesis-related genes predict tumor cell response to artemisininsThe Pharmacogenomics Journal, 2006
- The Ubiquitin-domain Protein HERP forms a Complex with Components of the Endoplasmic Reticulum Associated Degradation PathwayJournal of Molecular Biology, 2005
- Turning an ‘Achilles’ Heel’ into an asset – activation of HIF-1α during angiostatic therapy will increase tumor sensitivity to iron-catalyzed oxidative damageMedical Hypotheses, 2003
- Artemisinins target the SERCA of Plasmodium falciparumNature, 2003
- ER Stress Regulation of ATF6 Localization by Dissociation of BiP/GRP78 Binding and Unmasking of Golgi Localization SignalsDevelopmental Cell, 2002
- Simple and rapid physico-chemical methods to examine action of antimalarial drugs with heminLife Sciences, 2001
- Accumulation of nitrotyrosine on the SERCA2a isoform of SR Ca‐ATPase of rat skeletal muscle during aging: a peroxynitrite‐mediated process?FEBS Letters, 1996
- Transcriptional induction of genes encoding endoplasmic reticulum resident proteins requires a transmembrane protein kinaseCell, 1993