Hemolytic and antimalarial effects of tight-binding glyoxalase 1 inhibitors on the host-parasite unit of erythrocytes infected with Plasmodium falciparum

Glyoxalases prevent the formation of advanced glycation end products by converting glycolysis-derived methylglyoxal to d-lactate with the help of glutathione. Vander Jagt and colleagues previously showed that erythrocytes release about thirty times more d-lactate after infection with the human malar...

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Main Authors: Cletus A. Wezena, Miriam Urscher, Robert Vince, Swati S. More, Marcel Deponte
Format: Article
Language:English
Published: Elsevier 2016-08-01
Series:Redox Biology
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2213231716300179
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spelling doaj-61dfe1637f08437b8a83b34c958f9f612020-11-25T01:59:00ZengElsevierRedox Biology2213-23172016-08-018C34835310.1016/j.redox.2016.02.006Hemolytic and antimalarial effects of tight-binding glyoxalase 1 inhibitors on the host-parasite unit of erythrocytes infected with Plasmodium falciparumCletus A. Wezena0Miriam Urscher1Robert Vince2Swati S. More3Marcel Deponte4Department of Parasitology, Ruprecht-Karls University, D-69120 Heidelberg, GermanyDepartment of Parasitology, Ruprecht-Karls University, D-69120 Heidelberg, GermanyCenter for Drug Design, Academic Health Center, University of Minnesota, Minneapolis, MN 55455, USACenter for Drug Design, Academic Health Center, University of Minnesota, Minneapolis, MN 55455, USADepartment of Parasitology, Ruprecht-Karls University, D-69120 Heidelberg, GermanyGlyoxalases prevent the formation of advanced glycation end products by converting glycolysis-derived methylglyoxal to d-lactate with the help of glutathione. Vander Jagt and colleagues previously showed that erythrocytes release about thirty times more d-lactate after infection with the human malaria parasite Plasmodium falciparum. Functional glyoxalases in the host-parasite unit might therefore be crucial for parasite survival. Here, we determined the antimalarial and hemolytic activity of two tight-binding glyoxalase inhibitors using infected and uninfected erythrocytes. In addition, we synthesized and analyzed a set of diester derivates of both tight-binding inhibitors resulting in up to threefold lower IC50 values and an altered methemoglobin formation and hemolytic activity depending on the type of ester. Inhibitor treatments of uninfected erythrocytes revealed an extremely slow inactivation of the host cell glyoxalase, irrespective of inhibitor modifications, and a potential dispensability of the host cell enzyme for parasite survival. Our study highlights the benefits and drawbacks of different esterifications of glutathione-derived inhibitors and demonstrates the suitability of glyoxalase inhibitors as a tool for deciphering the relevance and mode of action of different glyoxalase systems in a host-parasite unit.http://www.sciencedirect.com/science/article/pii/S2213231716300179GlyoxalaseInhibitorRedoxPharmacokineticsErythrocyteMalaria
collection DOAJ
language English
format Article
sources DOAJ
author Cletus A. Wezena
Miriam Urscher
Robert Vince
Swati S. More
Marcel Deponte
spellingShingle Cletus A. Wezena
Miriam Urscher
Robert Vince
Swati S. More
Marcel Deponte
Hemolytic and antimalarial effects of tight-binding glyoxalase 1 inhibitors on the host-parasite unit of erythrocytes infected with Plasmodium falciparum
Redox Biology
Glyoxalase
Inhibitor
Redox
Pharmacokinetics
Erythrocyte
Malaria
author_facet Cletus A. Wezena
Miriam Urscher
Robert Vince
Swati S. More
Marcel Deponte
author_sort Cletus A. Wezena
title Hemolytic and antimalarial effects of tight-binding glyoxalase 1 inhibitors on the host-parasite unit of erythrocytes infected with Plasmodium falciparum
title_short Hemolytic and antimalarial effects of tight-binding glyoxalase 1 inhibitors on the host-parasite unit of erythrocytes infected with Plasmodium falciparum
title_full Hemolytic and antimalarial effects of tight-binding glyoxalase 1 inhibitors on the host-parasite unit of erythrocytes infected with Plasmodium falciparum
title_fullStr Hemolytic and antimalarial effects of tight-binding glyoxalase 1 inhibitors on the host-parasite unit of erythrocytes infected with Plasmodium falciparum
title_full_unstemmed Hemolytic and antimalarial effects of tight-binding glyoxalase 1 inhibitors on the host-parasite unit of erythrocytes infected with Plasmodium falciparum
title_sort hemolytic and antimalarial effects of tight-binding glyoxalase 1 inhibitors on the host-parasite unit of erythrocytes infected with plasmodium falciparum
publisher Elsevier
series Redox Biology
issn 2213-2317
publishDate 2016-08-01
description Glyoxalases prevent the formation of advanced glycation end products by converting glycolysis-derived methylglyoxal to d-lactate with the help of glutathione. Vander Jagt and colleagues previously showed that erythrocytes release about thirty times more d-lactate after infection with the human malaria parasite Plasmodium falciparum. Functional glyoxalases in the host-parasite unit might therefore be crucial for parasite survival. Here, we determined the antimalarial and hemolytic activity of two tight-binding glyoxalase inhibitors using infected and uninfected erythrocytes. In addition, we synthesized and analyzed a set of diester derivates of both tight-binding inhibitors resulting in up to threefold lower IC50 values and an altered methemoglobin formation and hemolytic activity depending on the type of ester. Inhibitor treatments of uninfected erythrocytes revealed an extremely slow inactivation of the host cell glyoxalase, irrespective of inhibitor modifications, and a potential dispensability of the host cell enzyme for parasite survival. Our study highlights the benefits and drawbacks of different esterifications of glutathione-derived inhibitors and demonstrates the suitability of glyoxalase inhibitors as a tool for deciphering the relevance and mode of action of different glyoxalase systems in a host-parasite unit.
topic Glyoxalase
Inhibitor
Redox
Pharmacokinetics
Erythrocyte
Malaria
url http://www.sciencedirect.com/science/article/pii/S2213231716300179
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