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Interactions between Artemisinins and other Antimalarial Drugs in Relation to the Cofactor Model—A Unifying Proposal for Drug Action

Identifieur interne : 001387 ( Main/Exploration ); précédent : 001386; suivant : 001388

Interactions between Artemisinins and other Antimalarial Drugs in Relation to the Cofactor Model—A Unifying Proposal for Drug Action

Auteurs : Richard K. Haynes [République populaire de Chine, Hong Kong, Italie] ; Kwan-Wing Cheu [République populaire de Chine] ; Ho-Wai Chan [République populaire de Chine] ; Ho-Ning Wong [République populaire de Chine] ; Ka-Yan Li [République populaire de Chine] ; Maggie Mei-Ki Tang [République populaire de Chine] ; Min-Jiao Chen [République populaire de Chine] ; Zu-Feng Guo [République populaire de Chine] ; Zhi-Hong Guo [République populaire de Chine] ; Kumar Sinniah [États-Unis] ; Amanda B. Witte [États-Unis] ; Paolo Coghi [Italie] ; Diego Monti [Italie]

Source :

RBID : ISTEX:8E7F3DE084EAD1AA148FC7CA00A053D7A634E997

English descriptors

Abstract

Artemisinins are proposed to act in the malaria parasite cytosol by oxidizing dihydroflavin cofactors of redox‐active flavoenzymes, and under aerobic conditions by inducing their autoxidation. Perturbation of redox homeostasis coupled with the generation of reactive oxygen species (ROS) ensues. Ascorbic acid–methylene blue (MB), N‐benzyl‐1,4‐dihydronicotinamide (BNAH)–MB, BNAH–lumiflavine, BNAH–riboflavin (RF), and NADPH–FAD–E. coli flavin reductase (Fre) systems at pH 7.4 generate leucomethylene blue (LMB) and reduced flavins that are rapidly oxidized in situ by artemisinins. These oxidations are inhibited by the 4‐aminoquinolines piperaquine (PPQ), chloroquine (CQ), and others. In contrast, the arylmethanols lumefantrine, mefloquine (MFQ), and quinine (QN) have little or no effect. Inhibition correlates with the antagonism exerted by 4‐aminoquinolines on the antimalarial activities of MB, RF, and artemisinins. Lack of inhibition correlates with the additivity/synergism between the arylmethanols and artemisinins. We propose association via π complex formation between the 4‐aminoquinolines and LMB or the dihydroflavins; this hinders hydride transfer from the reduced conjugates to the artemisinins. The arylmethanols have a decreased tendency to form π complexes, and so exert no effect. The parallel between chemical reactivity and antagonism or additivity/synergism draws attention to the mechanism of action of all drugs described herein. CQ and QN inhibit the formation of hemozoin in the parasite digestive vacuole (DV). The buildup of heme–FeIII results in an enhanced efflux from the DV into the cytosol. In addition, the lipophilic heme–FeIII complexes of CQ and QN that form in the DV are proposed to diffuse across the DV membrane. At the higher pH of the cytosol, the complexes decompose to liberate heme–FeIII. The quinoline or arylmethanol reenters the DV, and so transfers more heme–FeIII out of the DV. In this way, the 4‐aminoquinolines and arylmethanols exert antimalarial activities by enhancing heme–FeIII and thence free FeIII concentrations in the cytosol. The iron species enter into redox cycles through reduction of FeIII to FeII largely mediated by reduced flavin cofactors and likely also by NAD(P)H–Fre. Generation of ROS through oxidation of FeII by oxygen will also result. The cytotoxicities of artemisinins are thereby reinforced by the iron. Other aspects of drug action are emphasized. In the cytosol or DV, association by π complex formation between pairs of lipophilic drugs must adversely influence the pharmacokinetics of each drug. This explains the antagonism between PPQ and MFQ, for example. The basis for the antimalarial activity of RF mirrors that of MB, wherein it participates in redox cycling that involves flavoenzymes or Fre, resulting in attrition of NAD(P)H. The generation of ROS by artemisinins and ensuing Fenton chemistry accommodate the ability of artemisinins to induce membrane damage and to affect the parasite SERCA PfATP6 Ca2+ transporter. Thus, the effect exerted by artemisinins is more likely a downstream event involving ROS that will also be modulated by mutations in PfATP6. Such mutations attenuate, but cannot abrogate, antimalarial activities of artemisinins. Overall, parasite resistance to artemisinins arises through enhancement of antioxidant defense mechanisms.
Defense mechanism: The antagonism exerted by 4‐aminoquinolines (e.g. piperaquine) and the additivity/synergism exerted by arylmethanols (e.g. quinine) on the antimalarial activities of MB, riboflavin, and artemisinins correlates with the inhibition of oxidation by artemisinins of LMB, reduced flavins by the quinolines, and lack of any effect on the oxidation by arylmethanols; it further allows proposal for a unifying mechanism of action.

Url:
DOI: 10.1002/cmdc.201200383


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Le document en format XML

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<term>Absorbance</term>
<term>Absorption coefficient</term>
<term>Actual concentration</term>
<term>Agents chemother</term>
<term>Aliquot</term>
<term>Amodiaquine</term>
<term>Amodiaquine dihydrochloride dihydrate</term>
<term>Angew</term>
<term>Antimalarial</term>
<term>Antimalarial activities</term>
<term>Antimalarial activity</term>
<term>Antimicrob</term>
<term>Aqueous buffer</term>
<term>Artemether</term>
<term>Artemisinin</term>
<term>Artemisinin control</term>
<term>Artemisinin control experiment</term>
<term>Artemisinin solution</term>
<term>Artemisinins</term>
<term>Artemisone</term>
<term>Artesunate</term>
<term>Arylmethanols</term>
<term>Autoxidation</term>
<term>Becker</term>
<term>Biochem</term>
<term>Biol</term>
<term>Bnah</term>
<term>Bnah equiv</term>
<term>Cdcl3</term>
<term>Chem</term>
<term>Chemmedchem</term>
<term>Chemother</term>
<term>Chloroquine</term>
<term>Chloroquine diphosphate</term>
<term>Cofactor</term>
<term>Coghi</term>
<term>Coli flavin reductase</term>
<term>Complex formation</term>
<term>Control experiment</term>
<term>Cuvette</term>
<term>Cycling</term>
<term>Cytosol</term>
<term>Deoxyartemisinin</term>
<term>Diethyl ether</term>
<term>Dihydrate</term>
<term>Dihydroartemisinin</term>
<term>Dihydrochloride</term>
<term>Dihydroflavins</term>
<term>Diphosphate</term>
<term>Drug action</term>
<term>Egan</term>
<term>Equiv</term>
<term>Erythrocyte</term>
<term>Fadh2</term>
<term>Falciparum</term>
<term>Feiii</term>
<term>Final concentration</term>
<term>First minute</term>
<term>Flavin</term>
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<term>Flavoenzymes</term>
<term>Formate ester</term>
<term>Free base</term>
<term>Gmbh</term>
<term>Haynes</term>
<term>Heme</term>
<term>Hemozoin</term>
<term>Hydride transfer</term>
<term>Intracellular</term>
<term>Kgaa</term>
<term>Lfh2</term>
<term>Lipophilic</term>
<term>Lmax</term>
<term>Lumefantrine</term>
<term>Lumiflavine</term>
<term>Malaria parasite</term>
<term>Mecn</term>
<term>Mefloquine</term>
<term>Mefloquine hydrochloride</term>
<term>Mmol</term>
<term>Monti</term>
<term>Nadph</term>
<term>Nadph solution</term>
<term>Nmol</term>
<term>Oxidative</term>
<term>Oxidative stress</term>
<term>Parasite</term>
<term>Parasitol</term>
<term>Peroxide</term>
<term>Phosphate buffer</term>
<term>Piperaquine</term>
<term>Piperaquine equiv</term>
<term>Piperaquine tetraphosphate tetrahydrate</term>
<term>Precursor</term>
<term>Pyronaridine</term>
<term>Pyronaridine equiv</term>
<term>Pyronaridine tetraphosphate</term>
<term>Quinine</term>
<term>Quinoline</term>
<term>Quinolines</term>
<term>Reaction mixture</term>
<term>Redox</term>
<term>Redox cycling</term>
<term>Reductase</term>
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<term>Room temperature</term>
<term>Schirmer</term>
<term>Singlet</term>
<term>Stock solution</term>
<term>Tetrahydrate</term>
<term>Tetraphosphate</term>
<term>Trans</term>
<term>Tricarbonyl</term>
<term>Tricarbonyl compound</term>
<term>Trxr</term>
<term>Unreacted</term>
<term>Verlag</term>
<term>Verlag gmbh</term>
<term>Weinheim</term>
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<front>
<div type="abstract" xml:lang="en">Artemisinins are proposed to act in the malaria parasite cytosol by oxidizing dihydroflavin cofactors of redox‐active flavoenzymes, and under aerobic conditions by inducing their autoxidation. Perturbation of redox homeostasis coupled with the generation of reactive oxygen species (ROS) ensues. Ascorbic acid–methylene blue (MB), N‐benzyl‐1,4‐dihydronicotinamide (BNAH)–MB, BNAH–lumiflavine, BNAH–riboflavin (RF), and NADPH–FAD–E. coli flavin reductase (Fre) systems at pH 7.4 generate leucomethylene blue (LMB) and reduced flavins that are rapidly oxidized in situ by artemisinins. These oxidations are inhibited by the 4‐aminoquinolines piperaquine (PPQ), chloroquine (CQ), and others. In contrast, the arylmethanols lumefantrine, mefloquine (MFQ), and quinine (QN) have little or no effect. Inhibition correlates with the antagonism exerted by 4‐aminoquinolines on the antimalarial activities of MB, RF, and artemisinins. Lack of inhibition correlates with the additivity/synergism between the arylmethanols and artemisinins. We propose association via π complex formation between the 4‐aminoquinolines and LMB or the dihydroflavins; this hinders hydride transfer from the reduced conjugates to the artemisinins. The arylmethanols have a decreased tendency to form π complexes, and so exert no effect. The parallel between chemical reactivity and antagonism or additivity/synergism draws attention to the mechanism of action of all drugs described herein. CQ and QN inhibit the formation of hemozoin in the parasite digestive vacuole (DV). The buildup of heme–FeIII results in an enhanced efflux from the DV into the cytosol. In addition, the lipophilic heme–FeIII complexes of CQ and QN that form in the DV are proposed to diffuse across the DV membrane. At the higher pH of the cytosol, the complexes decompose to liberate heme–FeIII. The quinoline or arylmethanol reenters the DV, and so transfers more heme–FeIII out of the DV. In this way, the 4‐aminoquinolines and arylmethanols exert antimalarial activities by enhancing heme–FeIII and thence free FeIII concentrations in the cytosol. The iron species enter into redox cycles through reduction of FeIII to FeII largely mediated by reduced flavin cofactors and likely also by NAD(P)H–Fre. Generation of ROS through oxidation of FeII by oxygen will also result. The cytotoxicities of artemisinins are thereby reinforced by the iron. Other aspects of drug action are emphasized. In the cytosol or DV, association by π complex formation between pairs of lipophilic drugs must adversely influence the pharmacokinetics of each drug. This explains the antagonism between PPQ and MFQ, for example. The basis for the antimalarial activity of RF mirrors that of MB, wherein it participates in redox cycling that involves flavoenzymes or Fre, resulting in attrition of NAD(P)H. The generation of ROS by artemisinins and ensuing Fenton chemistry accommodate the ability of artemisinins to induce membrane damage and to affect the parasite SERCA PfATP6 Ca2+ transporter. Thus, the effect exerted by artemisinins is more likely a downstream event involving ROS that will also be modulated by mutations in PfATP6. Such mutations attenuate, but cannot abrogate, antimalarial activities of artemisinins. Overall, parasite resistance to artemisinins arises through enhancement of antioxidant defense mechanisms.</div>
<div type="abstract" xml:lang="en">Defense mechanism: The antagonism exerted by 4‐aminoquinolines (e.g. piperaquine) and the additivity/synergism exerted by arylmethanols (e.g. quinine) on the antimalarial activities of MB, riboflavin, and artemisinins correlates with the inhibition of oxidation by artemisinins of LMB, reduced flavins by the quinolines, and lack of any effect on the oxidation by arylmethanols; it further allows proposal for a unifying mechanism of action.</div>
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<name sortKey="Wong, Ho Ing" sort="Wong, Ho Ing" uniqKey="Wong H" first="Ho-Ning" last="Wong">Ho-Ning Wong</name>
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<name sortKey="Haynes, Richard K" sort="Haynes, Richard K" uniqKey="Haynes R" first="Richard K." last="Haynes">Richard K. Haynes</name>
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