Literature DB >> 17938190

Artemisinin and a series of novel endoperoxide antimalarials exert early effects on digestive vacuole morphology.

Maria del Pilar Crespo1, Thomas D Avery, Eric Hanssen, Emma Fox, Tony V Robinson, Peter Valente, Dennis K Taylor, Leann Tilley.   

Abstract

Artermisinin and its derivatives are now the mainstays of antimalarial treatment; however, their mechanism of action is only poorly understood. We report on the synthesis of a novel series of epoxy-endoperoxides that can be prepared in high yields from simple starting materials. Endoperoxides that are disubstituted with alkyl or benzyl side chains show efficient inhibition of the growth of both chloroquine-sensitive and -resistant strains of Plasmodium falciparum. A trans-epoxide with respect to the peroxide linkage increases the activity compared to that of its cis-epoxy counterpart or the parent endoperoxide. The novel endoperoxides do not show a strong interaction with artemisinin. We have compared the mechanism of action of the novel endoperoxides with that of artemisinin. Electron microscopy reveals that the novel endoperoxides cause the early accumulation of endocytic vesicles, while artemisinin causes the disruption of the digestive vacuole membrane. At longer incubation times artemisinin causes extensive loss of organellar structures, while the novel endoperoxides cause myelin body formation as well as the accumulation of endocytic vesicles. An early event following endoperoxide treatment is the redistribution of the pH-sensitive probe LysoSensor Blue from the digestive vacuole to punctate structures. By contrast, neither artemisinin nor the novel endoperoxides caused alterations in the morphology of the endoplasmic reticulum nor showed antagonistic antimalarial activity when they were used with thapsigargin. Analysis of rhodamine 123 uptake by P. falciparum suggests that disruption of the mitochondrial membrane potential occurs as a downstream effect rather than as an initiator of parasite killing. The data suggest that the digestive vacuole is an important initial site of endoperoxide antimalarial activity.

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Year:  2007        PMID: 17938190      PMCID: PMC2223901          DOI: 10.1128/AAC.00609-07

Source DB:  PubMed          Journal:  Antimicrob Agents Chemother        ISSN: 0066-4804            Impact factor:   5.191


  63 in total

1.  Novel endoperoxide antimalarials: synthesis, heme binding, and antimalarial activity.

Authors:  Dennis K Taylor; Thomas D Avery; Ben W Greatrex; Edward R T Tiekink; Ian G Macreadie; Peter I Macreadie; Adam D Humphries; Martha Kalkanidis; Emma N Fox; Nectarios Klonis; Leann Tilley
Journal:  J Med Chem       Date:  2004-03-25       Impact factor: 7.446

2.  Correlation of antimalarial activity of artemisinin derivatives with binding affinity with ferroprotoporphyrin IX.

Authors:  S Paitayatat; B Tarnchompoo; Y Thebtaranonth; Y Yuthavong
Journal:  J Med Chem       Date:  1997-02-28       Impact factor: 7.446

3.  Delivery of the malaria virulence protein PfEMP1 to the erythrocyte surface requires cholesterol-rich domains.

Authors:  Sarah Frankland; Akinola Adisa; Paul Horrocks; Theodore F Taraschi; Timothy Schneider; Salenna R Elliott; Stephen J Rogerson; Ellen Knuepfer; Alan F Cowman; Chris I Newbold; Leann Tilley
Journal:  Eukaryot Cell       Date:  2006-05

Review 4.  Artemisinin: mechanisms of action, resistance and toxicity.

Authors:  Steven R Meshnick
Journal:  Int J Parasitol       Date:  2002-12-04       Impact factor: 3.981

5.  "Tethered" Ru(II) catalysts for asymmetric transfer hydrogenation of ketones.

Authors:  Fung Kei Kathy Cheung; Aidan M Hayes; Jerome Hannedouche; Aveline S Y Yim; Martin Wills
Journal:  J Org Chem       Date:  2005-04-15       Impact factor: 4.354

6.  Artemisinin enhances heme-catalysed oxidation of lipid membranes.

Authors:  P A Berman; P A Adams
Journal:  Free Radic Biol Med       Date:  1997       Impact factor: 7.376

Review 7.  Why artemisinin and certain synthetic peroxides are potent antimalarials. Implications for the mode of action.

Authors:  C W Jefford
Journal:  Curr Med Chem       Date:  2001-12       Impact factor: 4.530

8.  Antimalarial cyclic peroxy ketals.

Authors:  G H Posner; H O'Dowd; P Ploypradith; J N Cumming; S Xie; T A Shapiro
Journal:  J Med Chem       Date:  1998-06-04       Impact factor: 7.446

9.  Identification of an antimalarial synthetic trioxolane drug development candidate.

Authors:  Jonathan L Vennerstrom; Sarah Arbe-Barnes; Reto Brun; Susan A Charman; Francis C K Chiu; Jacques Chollet; Yuxiang Dong; Arnulf Dorn; Daniel Hunziker; Hugues Matile; Kylie McIntosh; Maniyan Padmanilayam; Josefina Santo Tomas; Christian Scheurer; Bernard Scorneaux; Yuanqing Tang; Heinrich Urwyler; Sergio Wittlin; William N Charman
Journal:  Nature       Date:  2004-08-19       Impact factor: 49.962

10.  The Plasmodium falciparum translationally controlled tumor protein homolog and its reaction with the antimalarial drug artemisinin.

Authors:  J Bhisutthibhan; X Q Pan; P A Hossler; D J Walker; C A Yowell; J Carlton; J B Dame; S R Meshnick
Journal:  J Biol Chem       Date:  1998-06-26       Impact factor: 5.157

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  40 in total

Review 1.  Artemisinin-based combination therapies: a vital tool in efforts to eliminate malaria.

Authors:  Richard T Eastman; David A Fidock
Journal:  Nat Rev Microbiol       Date:  2009-11-02       Impact factor: 60.633

2.  Mechanisms of in vitro resistance to dihydroartemisinin in Plasmodium falciparum.

Authors:  Long Cui; Zenglei Wang; Jun Miao; Miao Miao; Ramesh Chandra; Hongying Jiang; Xin-zhuan Su; Liwang Cui
Journal:  Mol Microbiol       Date:  2012-08-06       Impact factor: 3.501

3.  Tracking Glideosome-associated protein 50 reveals the development and organization of the inner membrane complex of Plasmodium falciparum.

Authors:  Jeffrey A Yeoman; Eric Hanssen; Alexander G Maier; Nectarios Klonis; Bohumil Maco; Jake Baum; Lynne Turnbull; Cynthia B Whitchurch; Matthew W A Dixon; Leann Tilley
Journal:  Eukaryot Cell       Date:  2011-01-14

4.  Probing the antimalarial mechanism of artemisinin and OZ277 (arterolane) with nonperoxidic isosteres and nitroxyl radicals.

Authors:  Matthias A Fügi; Sergio Wittlin; Yuxiang Dong; Jonathan L Vennerstrom
Journal:  Antimicrob Agents Chemother       Date:  2009-12-22       Impact factor: 5.191

5.  Investigations into the role of the Plasmodium falciparum SERCA (PfATP6) L263E mutation in artemisinin action and resistance.

Authors:  Stephanie Gaw Valderramos; Daniel Scanfeld; Anne-Catrin Uhlemann; David A Fidock; Sanjeev Krishna
Journal:  Antimicrob Agents Chemother       Date:  2010-06-21       Impact factor: 5.191

6.  Investigating the antimalarial action of 1,2,4-trioxolanes with fluorescent chemical probes.

Authors:  Carmony L Hartwig; Erica M W Lauterwasser; Sumit S Mahajan; Jonathan M Hoke; Roland A Cooper; Adam R Renslo
Journal:  J Med Chem       Date:  2011-11-09       Impact factor: 7.446

7.  Platelet factor 4 activity against P. falciparum and its translation to nonpeptidic mimics as antimalarials.

Authors:  Melissa S Love; Melanie G Millholland; Satish Mishra; Swapnil Kulkarni; Katie B Freeman; Wenxi Pan; Robert W Kavash; Michael J Costanzo; Hyunil Jo; Thomas M Daly; Dewight R Williams; M Anna Kowalska; Lawrence W Bergman; Mortimer Poncz; William F DeGrado; Photini Sinnis; Richard W Scott; Doron C Greenbaum
Journal:  Cell Host Microbe       Date:  2012-12-13       Impact factor: 21.023

8.  Artemisinin directly targets malarial mitochondria through its specific mitochondrial activation.

Authors:  Juan Wang; Liying Huang; Jian Li; Qiangwang Fan; Yicheng Long; Ying Li; Bing Zhou
Journal:  PLoS One       Date:  2010-03-08       Impact factor: 3.240

9.  5-Bromo-spiro-[1,2-dioxane-4,4'-tricyclo-[4.3.1.1]undeca-ne]-3'-ol.

Authors:  Tony V Robinson; Dennis K Taylor; Edward R T Tiekink
Journal:  Acta Crystallogr Sect E Struct Rep Online       Date:  2009-12-24

Review 10.  Artemisinin Action and Resistance in Plasmodium falciparum.

Authors:  Leann Tilley; Judith Straimer; Nina F Gnädig; Stuart A Ralph; David A Fidock
Journal:  Trends Parasitol       Date:  2016-06-09
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