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Host-parasite co-metabolic activation of antitrypanosomal aminomethyl-benzoxaboroles

Recent development of benzoxaborole-based chemistry gave rise to a collection of compounds with great potential in targeting diverse infectious diseases, including human African Trypanosomiasis (HAT), a devastating neglected tropical disease. However, further medicinal development is largely restric...

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Autores principales: Zhang, Ning, Zoltner, Martin, Leung, Ka-Fai, Scullion, Paul, Hutchinson, Sebastian, del Pino, Ricardo C., Vincent, Isabel M., Zhang, Yong-Kang, Freund, Yvonne R., Alley, Michael R. K., Jacobs, Robert T., Read, Kevin D., Barrett, Michael P., Horn, David, Field, Mark C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5823473/
https://www.ncbi.nlm.nih.gov/pubmed/29425238
http://dx.doi.org/10.1371/journal.ppat.1006850
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author Zhang, Ning
Zoltner, Martin
Leung, Ka-Fai
Scullion, Paul
Hutchinson, Sebastian
del Pino, Ricardo C.
Vincent, Isabel M.
Zhang, Yong-Kang
Freund, Yvonne R.
Alley, Michael R. K.
Jacobs, Robert T.
Read, Kevin D.
Barrett, Michael P.
Horn, David
Field, Mark C.
author_facet Zhang, Ning
Zoltner, Martin
Leung, Ka-Fai
Scullion, Paul
Hutchinson, Sebastian
del Pino, Ricardo C.
Vincent, Isabel M.
Zhang, Yong-Kang
Freund, Yvonne R.
Alley, Michael R. K.
Jacobs, Robert T.
Read, Kevin D.
Barrett, Michael P.
Horn, David
Field, Mark C.
author_sort Zhang, Ning
collection PubMed
description Recent development of benzoxaborole-based chemistry gave rise to a collection of compounds with great potential in targeting diverse infectious diseases, including human African Trypanosomiasis (HAT), a devastating neglected tropical disease. However, further medicinal development is largely restricted by a lack of insight into mechanism of action (MoA) in pathogenic kinetoplastids. We adopted a multidisciplinary approach, combining a high-throughput forward genetic screen with functional group focused chemical biological, structural biology and biochemical analyses, to tackle the complex MoAs of benzoxaboroles in Trypanosoma brucei. We describe an oxidative enzymatic pathway composed of host semicarbazide-sensitive amine oxidase and a trypanosomal aldehyde dehydrogenase TbALDH3. Two sequential reactions through this pathway serve as the key underlying mechanism for activating a series of 4-aminomethylphenoxy-benzoxaboroles as potent trypanocides; the methylamine parental compounds as pro-drugs are transformed first into intermediate aldehyde metabolites, and further into the carboxylate metabolites as effective forms. Moreover, comparative biochemical and crystallographic analyses elucidated the catalytic specificity of TbALDH3 towards the benzaldehyde benzoxaborole metabolites as xenogeneic substrates. Overall, this work proposes a novel drug activation mechanism dependent on both host and parasite metabolism of primary amine containing molecules, which contributes a new perspective to our understanding of the benzoxaborole MoA, and could be further exploited to improve the therapeutic index of antimicrobial compounds.
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spelling pubmed-58234732018-03-15 Host-parasite co-metabolic activation of antitrypanosomal aminomethyl-benzoxaboroles Zhang, Ning Zoltner, Martin Leung, Ka-Fai Scullion, Paul Hutchinson, Sebastian del Pino, Ricardo C. Vincent, Isabel M. Zhang, Yong-Kang Freund, Yvonne R. Alley, Michael R. K. Jacobs, Robert T. Read, Kevin D. Barrett, Michael P. Horn, David Field, Mark C. PLoS Pathog Research Article Recent development of benzoxaborole-based chemistry gave rise to a collection of compounds with great potential in targeting diverse infectious diseases, including human African Trypanosomiasis (HAT), a devastating neglected tropical disease. However, further medicinal development is largely restricted by a lack of insight into mechanism of action (MoA) in pathogenic kinetoplastids. We adopted a multidisciplinary approach, combining a high-throughput forward genetic screen with functional group focused chemical biological, structural biology and biochemical analyses, to tackle the complex MoAs of benzoxaboroles in Trypanosoma brucei. We describe an oxidative enzymatic pathway composed of host semicarbazide-sensitive amine oxidase and a trypanosomal aldehyde dehydrogenase TbALDH3. Two sequential reactions through this pathway serve as the key underlying mechanism for activating a series of 4-aminomethylphenoxy-benzoxaboroles as potent trypanocides; the methylamine parental compounds as pro-drugs are transformed first into intermediate aldehyde metabolites, and further into the carboxylate metabolites as effective forms. Moreover, comparative biochemical and crystallographic analyses elucidated the catalytic specificity of TbALDH3 towards the benzaldehyde benzoxaborole metabolites as xenogeneic substrates. Overall, this work proposes a novel drug activation mechanism dependent on both host and parasite metabolism of primary amine containing molecules, which contributes a new perspective to our understanding of the benzoxaborole MoA, and could be further exploited to improve the therapeutic index of antimicrobial compounds. Public Library of Science 2018-02-09 /pmc/articles/PMC5823473/ /pubmed/29425238 http://dx.doi.org/10.1371/journal.ppat.1006850 Text en © 2018 Zhang et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Zhang, Ning
Zoltner, Martin
Leung, Ka-Fai
Scullion, Paul
Hutchinson, Sebastian
del Pino, Ricardo C.
Vincent, Isabel M.
Zhang, Yong-Kang
Freund, Yvonne R.
Alley, Michael R. K.
Jacobs, Robert T.
Read, Kevin D.
Barrett, Michael P.
Horn, David
Field, Mark C.
Host-parasite co-metabolic activation of antitrypanosomal aminomethyl-benzoxaboroles
title Host-parasite co-metabolic activation of antitrypanosomal aminomethyl-benzoxaboroles
title_full Host-parasite co-metabolic activation of antitrypanosomal aminomethyl-benzoxaboroles
title_fullStr Host-parasite co-metabolic activation of antitrypanosomal aminomethyl-benzoxaboroles
title_full_unstemmed Host-parasite co-metabolic activation of antitrypanosomal aminomethyl-benzoxaboroles
title_short Host-parasite co-metabolic activation of antitrypanosomal aminomethyl-benzoxaboroles
title_sort host-parasite co-metabolic activation of antitrypanosomal aminomethyl-benzoxaboroles
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5823473/
https://www.ncbi.nlm.nih.gov/pubmed/29425238
http://dx.doi.org/10.1371/journal.ppat.1006850
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