An extracellular redox signal triggers calcium release and impacts the asexual development of Toxoplasma gondii
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Published version
Author(s)
Type
Journal Article
Abstract
The ability of an organism to sense and respond to environmental redox fluctuations relies on a signaling network that is incompletely understood in apicomplexan parasites such as Toxoplasma gondii. The impact of changes in redox upon the development of this intracellular parasite is not known. Here, we provide a revised collection of 58 genes containing domains related to canonical antioxidant function, with their encoded proteins widely dispersed throughout different cellular compartments. We demonstrate that addition of exogenous H2O2 to human fibroblasts infected with T.
gondii triggers a Ca2+ flux in the cytosol of intracellular parasites that can induce egress. In line with existing models, egress triggered by exogenous H2O2 is reliant upon both Calcium-Dependent Protein Kinase 3 and diacylglycerol kinases. Finally, we show that the overexpression a glutaredoxin-roGFP2 redox sensor fusion protein in the parasitophorous vacuole severely impacts parasite replication. These data highlight the rich redox network that exists in T. gondii, evidencing a link between
extracellular redox and intracellular Ca2+ signaling that can culminate in parasite egress. Our findings also indicate that the redox potential of the intracellular environment contributes to normal parasite
growth. Combined, our findings highlight the important role of redox as an unexplored regulator of parasite biology.
gondii triggers a Ca2+ flux in the cytosol of intracellular parasites that can induce egress. In line with existing models, egress triggered by exogenous H2O2 is reliant upon both Calcium-Dependent Protein Kinase 3 and diacylglycerol kinases. Finally, we show that the overexpression a glutaredoxin-roGFP2 redox sensor fusion protein in the parasitophorous vacuole severely impacts parasite replication. These data highlight the rich redox network that exists in T. gondii, evidencing a link between
extracellular redox and intracellular Ca2+ signaling that can culminate in parasite egress. Our findings also indicate that the redox potential of the intracellular environment contributes to normal parasite
growth. Combined, our findings highlight the important role of redox as an unexplored regulator of parasite biology.
Date Issued
2021-08-10
Date Acceptance
2021-07-26
Citation
Frontiers in Cellular and Infection Microbiology, 2021, 11, pp.1-14
ISSN
2235-2988
Publisher
Frontiers Media
Start Page
1
End Page
14
Journal / Book Title
Frontiers in Cellular and Infection Microbiology
Volume
11
Copyright Statement
© 2021 Alves, Benns, Magnus, Dominicus, Dobai, Blight, Wincott and Child. This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
License URL
Sponsor
Wellcome Trust
Identifier
https://www.frontiersin.org/articles/10.3389/fcimb.2021.728425/full
Grant Number
202553/Z/16/Z
Subjects
Science & Technology
Life Sciences & Biomedicine
Immunology
Microbiology
toxoplasma
redox
egress
calcium
signaling
NMR SOLUTION STRUCTURE
HYDROGEN-PEROXIDE
MICRONEME SECRETION
QUANTITATIVE BIOSENSOR
SUPEROXIDE-DISMUTASE
S-GLUTATHIONYLATION
PROTEIN
MACROPHAGES
ANTIOXIDANT
KINASE
Science & Technology
Life Sciences & Biomedicine
Immunology
Microbiology
toxoplasma
redox
egress
calcium
signaling
NMR SOLUTION STRUCTURE
HYDROGEN-PEROXIDE
MICRONEME SECRETION
QUANTITATIVE BIOSENSOR
SUPEROXIDE-DISMUTASE
S-GLUTATHIONYLATION
PROTEIN
MACROPHAGES
ANTIOXIDANT
KINASE
calcium
egress
redox
signaling
toxoplasma
Calcium
Calcium Signaling
Humans
Hydrogen Peroxide
Oxidation-Reduction
Toxoplasma
Humans
Toxoplasma
Hydrogen Peroxide
Calcium
Calcium Signaling
Oxidation-Reduction
0601 Biochemistry and Cell Biology
0605 Microbiology
Publication Status
Published
Article Number
728425
Date Publish Online
2021-08-10