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Reliable, scalable functional genetics in bloodstream-form Trypanosoma congolense in vitro and in vivo

Animal African trypanosomiasis (AAT) is a severe, wasting disease of domestic livestock and diverse wildlife species. The disease in cattle kills millions of animals each year and inflicts a major economic cost on agriculture in sub-Saharan Africa. Cattle AAT is caused predominantly by the protozoan...

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Autores principales: Awuah-Mensah, Georgina, McDonald, Jennifer, Steketee, Pieter C., Autheman, Delphine, Whipple, Sarah, D'Archivio, Simon, Brandt, Cordelia, Clare, Simon, Harcourt, Katherine, Wright, Gavin J., Morrison, Liam J., Gadelha, Catarina, Wickstead, Bill
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7870057/
https://www.ncbi.nlm.nih.gov/pubmed/33481935
http://dx.doi.org/10.1371/journal.ppat.1009224
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author Awuah-Mensah, Georgina
McDonald, Jennifer
Steketee, Pieter C.
Autheman, Delphine
Whipple, Sarah
D'Archivio, Simon
Brandt, Cordelia
Clare, Simon
Harcourt, Katherine
Wright, Gavin J.
Morrison, Liam J.
Gadelha, Catarina
Wickstead, Bill
author_facet Awuah-Mensah, Georgina
McDonald, Jennifer
Steketee, Pieter C.
Autheman, Delphine
Whipple, Sarah
D'Archivio, Simon
Brandt, Cordelia
Clare, Simon
Harcourt, Katherine
Wright, Gavin J.
Morrison, Liam J.
Gadelha, Catarina
Wickstead, Bill
author_sort Awuah-Mensah, Georgina
collection PubMed
description Animal African trypanosomiasis (AAT) is a severe, wasting disease of domestic livestock and diverse wildlife species. The disease in cattle kills millions of animals each year and inflicts a major economic cost on agriculture in sub-Saharan Africa. Cattle AAT is caused predominantly by the protozoan parasites Trypanosoma congolense and T. vivax, but laboratory research on the pathogenic stages of these organisms is severely inhibited by difficulties in making even minor genetic modifications. As a result, many of the important basic questions about the biology of these parasites cannot be addressed. Here we demonstrate that an in vitro culture of the T. congolense genomic reference strain can be modified directly in the bloodstream form reliably and at high efficiency. We describe a parental single marker line that expresses T. congolense-optimized T7 RNA polymerase and Tet repressor and show that minichromosome loci can be used as sites for stable, regulatable transgene expression with low background in non-induced cells. Using these tools, we describe organism-specific constructs for inducible RNA-interference (RNAi) and demonstrate knockdown of multiple essential and non-essential genes. We also show that a minichromosomal site can be exploited to create a stable bloodstream-form line that robustly provides >40,000 independent stable clones per transfection–enabling the production of high-complexity libraries of genome-scale. Finally, we show that modified forms of T. congolense are still infectious, create stable high-bioluminescence lines that can be used in models of AAT, and follow the course of infections in mice by in vivo imaging. These experiments establish a base set of tools to change T. congolense from a technically challenging organism to a routine model for functional genetics and allow us to begin to address some of the fundamental questions about the biology of this important parasite.
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spelling pubmed-78700572021-02-11 Reliable, scalable functional genetics in bloodstream-form Trypanosoma congolense in vitro and in vivo Awuah-Mensah, Georgina McDonald, Jennifer Steketee, Pieter C. Autheman, Delphine Whipple, Sarah D'Archivio, Simon Brandt, Cordelia Clare, Simon Harcourt, Katherine Wright, Gavin J. Morrison, Liam J. Gadelha, Catarina Wickstead, Bill PLoS Pathog Research Article Animal African trypanosomiasis (AAT) is a severe, wasting disease of domestic livestock and diverse wildlife species. The disease in cattle kills millions of animals each year and inflicts a major economic cost on agriculture in sub-Saharan Africa. Cattle AAT is caused predominantly by the protozoan parasites Trypanosoma congolense and T. vivax, but laboratory research on the pathogenic stages of these organisms is severely inhibited by difficulties in making even minor genetic modifications. As a result, many of the important basic questions about the biology of these parasites cannot be addressed. Here we demonstrate that an in vitro culture of the T. congolense genomic reference strain can be modified directly in the bloodstream form reliably and at high efficiency. We describe a parental single marker line that expresses T. congolense-optimized T7 RNA polymerase and Tet repressor and show that minichromosome loci can be used as sites for stable, regulatable transgene expression with low background in non-induced cells. Using these tools, we describe organism-specific constructs for inducible RNA-interference (RNAi) and demonstrate knockdown of multiple essential and non-essential genes. We also show that a minichromosomal site can be exploited to create a stable bloodstream-form line that robustly provides >40,000 independent stable clones per transfection–enabling the production of high-complexity libraries of genome-scale. Finally, we show that modified forms of T. congolense are still infectious, create stable high-bioluminescence lines that can be used in models of AAT, and follow the course of infections in mice by in vivo imaging. These experiments establish a base set of tools to change T. congolense from a technically challenging organism to a routine model for functional genetics and allow us to begin to address some of the fundamental questions about the biology of this important parasite. Public Library of Science 2021-01-22 /pmc/articles/PMC7870057/ /pubmed/33481935 http://dx.doi.org/10.1371/journal.ppat.1009224 Text en © 2021 Awuah-Mensah 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
Awuah-Mensah, Georgina
McDonald, Jennifer
Steketee, Pieter C.
Autheman, Delphine
Whipple, Sarah
D'Archivio, Simon
Brandt, Cordelia
Clare, Simon
Harcourt, Katherine
Wright, Gavin J.
Morrison, Liam J.
Gadelha, Catarina
Wickstead, Bill
Reliable, scalable functional genetics in bloodstream-form Trypanosoma congolense in vitro and in vivo
title Reliable, scalable functional genetics in bloodstream-form Trypanosoma congolense in vitro and in vivo
title_full Reliable, scalable functional genetics in bloodstream-form Trypanosoma congolense in vitro and in vivo
title_fullStr Reliable, scalable functional genetics in bloodstream-form Trypanosoma congolense in vitro and in vivo
title_full_unstemmed Reliable, scalable functional genetics in bloodstream-form Trypanosoma congolense in vitro and in vivo
title_short Reliable, scalable functional genetics in bloodstream-form Trypanosoma congolense in vitro and in vivo
title_sort reliable, scalable functional genetics in bloodstream-form trypanosoma congolense in vitro and in vivo
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7870057/
https://www.ncbi.nlm.nih.gov/pubmed/33481935
http://dx.doi.org/10.1371/journal.ppat.1009224
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