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Genetic modification of the diarrheal pathogen Cryptosporidium parvum

Recent studies into the global causes of severe diarrhea in young children have identified the protozoan parasite Cryptosporidium as the second most important diarrheal pathogen after rotavirus(1–3). Diarrheal disease is estimated to be responsible for 10.5% of overall child mortality(4). Cryptospor...

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Autores principales: Vinayak, Sumiti, Pawlowic, Mattie C., Sateriale, Adam, Brooks, Carrie F., Studstill, Caleb J., Bar-Peled, Yael, Cipriano, Michael J., Striepen, Boris
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4640681/
https://www.ncbi.nlm.nih.gov/pubmed/26176919
http://dx.doi.org/10.1038/nature14651
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author Vinayak, Sumiti
Pawlowic, Mattie C.
Sateriale, Adam
Brooks, Carrie F.
Studstill, Caleb J.
Bar-Peled, Yael
Cipriano, Michael J.
Striepen, Boris
author_facet Vinayak, Sumiti
Pawlowic, Mattie C.
Sateriale, Adam
Brooks, Carrie F.
Studstill, Caleb J.
Bar-Peled, Yael
Cipriano, Michael J.
Striepen, Boris
author_sort Vinayak, Sumiti
collection PubMed
description Recent studies into the global causes of severe diarrhea in young children have identified the protozoan parasite Cryptosporidium as the second most important diarrheal pathogen after rotavirus(1–3). Diarrheal disease is estimated to be responsible for 10.5% of overall child mortality(4). Cryptosporidium is also an opportunistic pathogen in the context of HIV-AIDS and organ transplantation(5,6). There is no vaccine and only a single approved drug that provides no benefit for those in gravest danger, malnourished children and immunocompromised patients(7,8). Cryptosporidiosis drug and vaccine development is limited by the poor tractability of the parasite, which includes lack of continuous culture, facile animal models, and molecular genetic tools(3,9). Here we describe an experimental framework to genetically modify this important human pathogen. We establish and optimize transfection of C. parvum sporozoites in tissue culture. To isolate stable transgenics we develop a mouse model that delivers sporozoites directly into the intestine, a Cryptosporidium CRISPR/Cas9 system, and in vivo selection for aminoglycoside resistance. We derive reporter parasites suitable for in vitro and in vivo drug screening, and we evaluate the basis of drug susceptibility by gene knock out. We anticipate the ability to genetically engineer the parasite will be transformative for Cryptosporidium research. Genetic reporters will provide quantitative correlates for disease, cure and protection and the role of parasite genes in these processes is now open to rigorous investigation.
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spelling pubmed-46406812016-01-23 Genetic modification of the diarrheal pathogen Cryptosporidium parvum Vinayak, Sumiti Pawlowic, Mattie C. Sateriale, Adam Brooks, Carrie F. Studstill, Caleb J. Bar-Peled, Yael Cipriano, Michael J. Striepen, Boris Nature Article Recent studies into the global causes of severe diarrhea in young children have identified the protozoan parasite Cryptosporidium as the second most important diarrheal pathogen after rotavirus(1–3). Diarrheal disease is estimated to be responsible for 10.5% of overall child mortality(4). Cryptosporidium is also an opportunistic pathogen in the context of HIV-AIDS and organ transplantation(5,6). There is no vaccine and only a single approved drug that provides no benefit for those in gravest danger, malnourished children and immunocompromised patients(7,8). Cryptosporidiosis drug and vaccine development is limited by the poor tractability of the parasite, which includes lack of continuous culture, facile animal models, and molecular genetic tools(3,9). Here we describe an experimental framework to genetically modify this important human pathogen. We establish and optimize transfection of C. parvum sporozoites in tissue culture. To isolate stable transgenics we develop a mouse model that delivers sporozoites directly into the intestine, a Cryptosporidium CRISPR/Cas9 system, and in vivo selection for aminoglycoside resistance. We derive reporter parasites suitable for in vitro and in vivo drug screening, and we evaluate the basis of drug susceptibility by gene knock out. We anticipate the ability to genetically engineer the parasite will be transformative for Cryptosporidium research. Genetic reporters will provide quantitative correlates for disease, cure and protection and the role of parasite genes in these processes is now open to rigorous investigation. 2015-07-15 2015-07-23 /pmc/articles/PMC4640681/ /pubmed/26176919 http://dx.doi.org/10.1038/nature14651 Text en Reprints and permissions information is available at www.nature.com/reprints.
spellingShingle Article
Vinayak, Sumiti
Pawlowic, Mattie C.
Sateriale, Adam
Brooks, Carrie F.
Studstill, Caleb J.
Bar-Peled, Yael
Cipriano, Michael J.
Striepen, Boris
Genetic modification of the diarrheal pathogen Cryptosporidium parvum
title Genetic modification of the diarrheal pathogen Cryptosporidium parvum
title_full Genetic modification of the diarrheal pathogen Cryptosporidium parvum
title_fullStr Genetic modification of the diarrheal pathogen Cryptosporidium parvum
title_full_unstemmed Genetic modification of the diarrheal pathogen Cryptosporidium parvum
title_short Genetic modification of the diarrheal pathogen Cryptosporidium parvum
title_sort genetic modification of the diarrheal pathogen cryptosporidium parvum
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4640681/
https://www.ncbi.nlm.nih.gov/pubmed/26176919
http://dx.doi.org/10.1038/nature14651
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