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Trypanosoma brucei TbIF1 inhibits the essential F(1)-ATPase in the infectious form of the parasite

The mitochondrial (mt) F(o)F(1)-ATP synthase of the digenetic parasite, Trypanosoma brucei, generates ATP during the insect procyclic form (PF), but becomes a perpetual consumer of ATP in the mammalian bloodstream form (BF), which lacks a canonical respiratory chain. This unconventional dependence o...

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Autores principales: Panicucci, Brian, Gahura, Ondřej, Zíková, Alena
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5407850/
https://www.ncbi.nlm.nih.gov/pubmed/28414727
http://dx.doi.org/10.1371/journal.pntd.0005552
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author Panicucci, Brian
Gahura, Ondřej
Zíková, Alena
author_facet Panicucci, Brian
Gahura, Ondřej
Zíková, Alena
author_sort Panicucci, Brian
collection PubMed
description The mitochondrial (mt) F(o)F(1)-ATP synthase of the digenetic parasite, Trypanosoma brucei, generates ATP during the insect procyclic form (PF), but becomes a perpetual consumer of ATP in the mammalian bloodstream form (BF), which lacks a canonical respiratory chain. This unconventional dependence on F(o)F(1)-ATPase is required to maintain the essential mt membrane potential (Δψm). Normally, ATP hydrolysis by this rotary molecular motor is restricted to when eukaryotic cells experience sporadic hypoxic conditions, during which this compulsory function quickly depletes the cellular ATP pool. To protect against this cellular treason, the highly conserved inhibitory factor 1 (IF1) binds the enzyme in a manner that solely inhibits the hydrolytic activity. Intriguingly, we were able to identify the IF1 homolog in T. brucei (TbIF1), but determined that its expression in the mitochondrion is tightly regulated throughout the life cycle as it is only detected in PF cells. TbIF1 appears to primarily function as an emergency brake in PF cells, where it prevented the restoration of the Δψm by F(o)F(1)-ATPase when respiration was chemically inhibited. In vitro, TbIF1 overexpression specifically inhibits the hydrolytic activity but not the synthetic capability of the F(o)F(1)-ATP synthase in PF mitochondria. Furthermore, low μM amounts of recombinant TbIF1 achieve the same inhibition of total mt ATPase activity as the F(o)F(1)-ATPase specific inhibitors, azide and oligomycin. Therefore, even minimal ectopic expression of TbIF1 in BF cells proved lethal as the indispensable Δψm collapsed due to inhibited F(o)F(1)-ATPase. In summary, we provide evidence that T. brucei harbors a natural and potent unidirectional inhibitor of the vital F(o)F(1)-ATPase activity that can be exploited for future structure-based drug design.
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spelling pubmed-54078502017-05-14 Trypanosoma brucei TbIF1 inhibits the essential F(1)-ATPase in the infectious form of the parasite Panicucci, Brian Gahura, Ondřej Zíková, Alena PLoS Negl Trop Dis Research Article The mitochondrial (mt) F(o)F(1)-ATP synthase of the digenetic parasite, Trypanosoma brucei, generates ATP during the insect procyclic form (PF), but becomes a perpetual consumer of ATP in the mammalian bloodstream form (BF), which lacks a canonical respiratory chain. This unconventional dependence on F(o)F(1)-ATPase is required to maintain the essential mt membrane potential (Δψm). Normally, ATP hydrolysis by this rotary molecular motor is restricted to when eukaryotic cells experience sporadic hypoxic conditions, during which this compulsory function quickly depletes the cellular ATP pool. To protect against this cellular treason, the highly conserved inhibitory factor 1 (IF1) binds the enzyme in a manner that solely inhibits the hydrolytic activity. Intriguingly, we were able to identify the IF1 homolog in T. brucei (TbIF1), but determined that its expression in the mitochondrion is tightly regulated throughout the life cycle as it is only detected in PF cells. TbIF1 appears to primarily function as an emergency brake in PF cells, where it prevented the restoration of the Δψm by F(o)F(1)-ATPase when respiration was chemically inhibited. In vitro, TbIF1 overexpression specifically inhibits the hydrolytic activity but not the synthetic capability of the F(o)F(1)-ATP synthase in PF mitochondria. Furthermore, low μM amounts of recombinant TbIF1 achieve the same inhibition of total mt ATPase activity as the F(o)F(1)-ATPase specific inhibitors, azide and oligomycin. Therefore, even minimal ectopic expression of TbIF1 in BF cells proved lethal as the indispensable Δψm collapsed due to inhibited F(o)F(1)-ATPase. In summary, we provide evidence that T. brucei harbors a natural and potent unidirectional inhibitor of the vital F(o)F(1)-ATPase activity that can be exploited for future structure-based drug design. Public Library of Science 2017-04-17 /pmc/articles/PMC5407850/ /pubmed/28414727 http://dx.doi.org/10.1371/journal.pntd.0005552 Text en © 2017 Panicucci 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
Panicucci, Brian
Gahura, Ondřej
Zíková, Alena
Trypanosoma brucei TbIF1 inhibits the essential F(1)-ATPase in the infectious form of the parasite
title Trypanosoma brucei TbIF1 inhibits the essential F(1)-ATPase in the infectious form of the parasite
title_full Trypanosoma brucei TbIF1 inhibits the essential F(1)-ATPase in the infectious form of the parasite
title_fullStr Trypanosoma brucei TbIF1 inhibits the essential F(1)-ATPase in the infectious form of the parasite
title_full_unstemmed Trypanosoma brucei TbIF1 inhibits the essential F(1)-ATPase in the infectious form of the parasite
title_short Trypanosoma brucei TbIF1 inhibits the essential F(1)-ATPase in the infectious form of the parasite
title_sort trypanosoma brucei tbif1 inhibits the essential f(1)-atpase in the infectious form of the parasite
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5407850/
https://www.ncbi.nlm.nih.gov/pubmed/28414727
http://dx.doi.org/10.1371/journal.pntd.0005552
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