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Cellular barcoding of protozoan pathogens reveals the within-host population dynamics of Toxoplasma gondii host colonization

Cellular barcoding techniques are powerful tools to understand microbial pathogenesis. However, barcoding strategies have not been broadly applied to protozoan parasites, which have unique genomic structures and virulence strategies compared with viral and bacterial pathogens. Here, we present a CRI...

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Autores principales: Wincott, Ceire J., Sritharan, Gayathri, Benns, Henry J., May, Dana, Gilabert-Carbajo, Carla, Bunyan, Monique, Fairweather, Aisling R., Alves, Eduardo, Andrew, Ivan, Game, Laurence, Frickel, Eva-Maria, Tiengwe, Calvin, Ewald, Sarah E., Child, Matthew A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9421581/
https://www.ncbi.nlm.nih.gov/pubmed/36046624
http://dx.doi.org/10.1016/j.crmeth.2022.100274
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author Wincott, Ceire J.
Sritharan, Gayathri
Benns, Henry J.
May, Dana
Gilabert-Carbajo, Carla
Bunyan, Monique
Fairweather, Aisling R.
Alves, Eduardo
Andrew, Ivan
Game, Laurence
Frickel, Eva-Maria
Tiengwe, Calvin
Ewald, Sarah E.
Child, Matthew A.
author_facet Wincott, Ceire J.
Sritharan, Gayathri
Benns, Henry J.
May, Dana
Gilabert-Carbajo, Carla
Bunyan, Monique
Fairweather, Aisling R.
Alves, Eduardo
Andrew, Ivan
Game, Laurence
Frickel, Eva-Maria
Tiengwe, Calvin
Ewald, Sarah E.
Child, Matthew A.
author_sort Wincott, Ceire J.
collection PubMed
description Cellular barcoding techniques are powerful tools to understand microbial pathogenesis. However, barcoding strategies have not been broadly applied to protozoan parasites, which have unique genomic structures and virulence strategies compared with viral and bacterial pathogens. Here, we present a CRISPR-based method to barcode protozoa, which we successfully apply to Toxoplasma gondii and Trypanosoma brucei. Using libraries of barcoded T. gondii, we evaluate shifts in the population structure from acute to chronic infection of mice. Contrary to expectation, most barcodes were present in the brain one month post-intraperitoneal infection in both inbred CBA/J and outbred Swiss mice. Although parasite cyst number and barcode diversity declined over time, barcodes representing a minor fraction of the inoculum could become a dominant population in the brain by three months post-infection. These data establish a cellular barcoding approach for protozoa and evidence that the blood-brain barrier is not a major bottleneck to colonization by T. gondii.
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spelling pubmed-94215812022-08-30 Cellular barcoding of protozoan pathogens reveals the within-host population dynamics of Toxoplasma gondii host colonization Wincott, Ceire J. Sritharan, Gayathri Benns, Henry J. May, Dana Gilabert-Carbajo, Carla Bunyan, Monique Fairweather, Aisling R. Alves, Eduardo Andrew, Ivan Game, Laurence Frickel, Eva-Maria Tiengwe, Calvin Ewald, Sarah E. Child, Matthew A. Cell Rep Methods Report Cellular barcoding techniques are powerful tools to understand microbial pathogenesis. However, barcoding strategies have not been broadly applied to protozoan parasites, which have unique genomic structures and virulence strategies compared with viral and bacterial pathogens. Here, we present a CRISPR-based method to barcode protozoa, which we successfully apply to Toxoplasma gondii and Trypanosoma brucei. Using libraries of barcoded T. gondii, we evaluate shifts in the population structure from acute to chronic infection of mice. Contrary to expectation, most barcodes were present in the brain one month post-intraperitoneal infection in both inbred CBA/J and outbred Swiss mice. Although parasite cyst number and barcode diversity declined over time, barcodes representing a minor fraction of the inoculum could become a dominant population in the brain by three months post-infection. These data establish a cellular barcoding approach for protozoa and evidence that the blood-brain barrier is not a major bottleneck to colonization by T. gondii. Elsevier 2022-08-22 /pmc/articles/PMC9421581/ /pubmed/36046624 http://dx.doi.org/10.1016/j.crmeth.2022.100274 Text en © 2022 The Author(s) https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Report
Wincott, Ceire J.
Sritharan, Gayathri
Benns, Henry J.
May, Dana
Gilabert-Carbajo, Carla
Bunyan, Monique
Fairweather, Aisling R.
Alves, Eduardo
Andrew, Ivan
Game, Laurence
Frickel, Eva-Maria
Tiengwe, Calvin
Ewald, Sarah E.
Child, Matthew A.
Cellular barcoding of protozoan pathogens reveals the within-host population dynamics of Toxoplasma gondii host colonization
title Cellular barcoding of protozoan pathogens reveals the within-host population dynamics of Toxoplasma gondii host colonization
title_full Cellular barcoding of protozoan pathogens reveals the within-host population dynamics of Toxoplasma gondii host colonization
title_fullStr Cellular barcoding of protozoan pathogens reveals the within-host population dynamics of Toxoplasma gondii host colonization
title_full_unstemmed Cellular barcoding of protozoan pathogens reveals the within-host population dynamics of Toxoplasma gondii host colonization
title_short Cellular barcoding of protozoan pathogens reveals the within-host population dynamics of Toxoplasma gondii host colonization
title_sort cellular barcoding of protozoan pathogens reveals the within-host population dynamics of toxoplasma gondii host colonization
topic Report
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9421581/
https://www.ncbi.nlm.nih.gov/pubmed/36046624
http://dx.doi.org/10.1016/j.crmeth.2022.100274
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