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A forward genetic screen reveals a primary role for Plasmodium falciparum Reticulocyte Binding Protein Homologue 2a and 2b in determining alternative erythrocyte invasion pathways

Invasion of human erythrocytes is essential for Plasmodium falciparum parasite survival and pathogenesis, and is also a complex phenotype. While some later steps in invasion appear to be invariant and essential, the earlier steps of recognition are controlled by a series of redundant, and only parti...

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Autores principales: Campino, Susana, Marin-Menendez, Alejandro, Kemp, Alison, Cross, Nadia, Drought, Laura, Otto, Thomas D., Benavente, Ernest Diez, Ravenhall, Matt, Schwach, Frank, Girling, Gareth, Manske, Magnus, Theron, Michel, Gould, Kelda, Drury, Eleanor, Clark, Taane G., Kwiatkowski, Dominic P., Pance, Alena, Rayner, Julian C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6289454/
https://www.ncbi.nlm.nih.gov/pubmed/30496294
http://dx.doi.org/10.1371/journal.ppat.1007436
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author Campino, Susana
Marin-Menendez, Alejandro
Kemp, Alison
Cross, Nadia
Drought, Laura
Otto, Thomas D.
Benavente, Ernest Diez
Ravenhall, Matt
Schwach, Frank
Girling, Gareth
Manske, Magnus
Theron, Michel
Gould, Kelda
Drury, Eleanor
Clark, Taane G.
Kwiatkowski, Dominic P.
Pance, Alena
Rayner, Julian C.
author_facet Campino, Susana
Marin-Menendez, Alejandro
Kemp, Alison
Cross, Nadia
Drought, Laura
Otto, Thomas D.
Benavente, Ernest Diez
Ravenhall, Matt
Schwach, Frank
Girling, Gareth
Manske, Magnus
Theron, Michel
Gould, Kelda
Drury, Eleanor
Clark, Taane G.
Kwiatkowski, Dominic P.
Pance, Alena
Rayner, Julian C.
author_sort Campino, Susana
collection PubMed
description Invasion of human erythrocytes is essential for Plasmodium falciparum parasite survival and pathogenesis, and is also a complex phenotype. While some later steps in invasion appear to be invariant and essential, the earlier steps of recognition are controlled by a series of redundant, and only partially understood, receptor-ligand interactions. Reverse genetic analysis of laboratory adapted strains has identified multiple genes that when deleted can alter invasion, but how the relative contributions of each gene translate to the phenotypes of clinical isolates is far from clear. We used a forward genetic approach to identify genes responsible for variable erythrocyte invasion by phenotyping the parents and progeny of previously generated experimental genetic crosses. Linkage analysis using whole genome sequencing data revealed a single major locus was responsible for the majority of phenotypic variation in two invasion pathways. This locus contained the PfRh2a and PfRh2b genes, members of one of the major invasion ligand gene families, but not widely thought to play such a prominent role in specifying invasion phenotypes. Variation in invasion pathways was linked to significant differences in PfRh2a and PfRh2b expression between parasite lines, and their role in specifying alternative invasion was confirmed by CRISPR-Cas9-mediated genome editing. Expansion of the analysis to a large set of clinical P. falciparum isolates revealed common deletions, suggesting that variation at this locus is a major cause of invasion phenotypic variation in the endemic setting. This work has implications for blood-stage vaccine development and will help inform the design and location of future large-scale studies of invasion in clinical isolates.
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spelling pubmed-62894542018-12-28 A forward genetic screen reveals a primary role for Plasmodium falciparum Reticulocyte Binding Protein Homologue 2a and 2b in determining alternative erythrocyte invasion pathways Campino, Susana Marin-Menendez, Alejandro Kemp, Alison Cross, Nadia Drought, Laura Otto, Thomas D. Benavente, Ernest Diez Ravenhall, Matt Schwach, Frank Girling, Gareth Manske, Magnus Theron, Michel Gould, Kelda Drury, Eleanor Clark, Taane G. Kwiatkowski, Dominic P. Pance, Alena Rayner, Julian C. PLoS Pathog Research Article Invasion of human erythrocytes is essential for Plasmodium falciparum parasite survival and pathogenesis, and is also a complex phenotype. While some later steps in invasion appear to be invariant and essential, the earlier steps of recognition are controlled by a series of redundant, and only partially understood, receptor-ligand interactions. Reverse genetic analysis of laboratory adapted strains has identified multiple genes that when deleted can alter invasion, but how the relative contributions of each gene translate to the phenotypes of clinical isolates is far from clear. We used a forward genetic approach to identify genes responsible for variable erythrocyte invasion by phenotyping the parents and progeny of previously generated experimental genetic crosses. Linkage analysis using whole genome sequencing data revealed a single major locus was responsible for the majority of phenotypic variation in two invasion pathways. This locus contained the PfRh2a and PfRh2b genes, members of one of the major invasion ligand gene families, but not widely thought to play such a prominent role in specifying invasion phenotypes. Variation in invasion pathways was linked to significant differences in PfRh2a and PfRh2b expression between parasite lines, and their role in specifying alternative invasion was confirmed by CRISPR-Cas9-mediated genome editing. Expansion of the analysis to a large set of clinical P. falciparum isolates revealed common deletions, suggesting that variation at this locus is a major cause of invasion phenotypic variation in the endemic setting. This work has implications for blood-stage vaccine development and will help inform the design and location of future large-scale studies of invasion in clinical isolates. Public Library of Science 2018-11-29 /pmc/articles/PMC6289454/ /pubmed/30496294 http://dx.doi.org/10.1371/journal.ppat.1007436 Text en © 2018 Campino 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
Campino, Susana
Marin-Menendez, Alejandro
Kemp, Alison
Cross, Nadia
Drought, Laura
Otto, Thomas D.
Benavente, Ernest Diez
Ravenhall, Matt
Schwach, Frank
Girling, Gareth
Manske, Magnus
Theron, Michel
Gould, Kelda
Drury, Eleanor
Clark, Taane G.
Kwiatkowski, Dominic P.
Pance, Alena
Rayner, Julian C.
A forward genetic screen reveals a primary role for Plasmodium falciparum Reticulocyte Binding Protein Homologue 2a and 2b in determining alternative erythrocyte invasion pathways
title A forward genetic screen reveals a primary role for Plasmodium falciparum Reticulocyte Binding Protein Homologue 2a and 2b in determining alternative erythrocyte invasion pathways
title_full A forward genetic screen reveals a primary role for Plasmodium falciparum Reticulocyte Binding Protein Homologue 2a and 2b in determining alternative erythrocyte invasion pathways
title_fullStr A forward genetic screen reveals a primary role for Plasmodium falciparum Reticulocyte Binding Protein Homologue 2a and 2b in determining alternative erythrocyte invasion pathways
title_full_unstemmed A forward genetic screen reveals a primary role for Plasmodium falciparum Reticulocyte Binding Protein Homologue 2a and 2b in determining alternative erythrocyte invasion pathways
title_short A forward genetic screen reveals a primary role for Plasmodium falciparum Reticulocyte Binding Protein Homologue 2a and 2b in determining alternative erythrocyte invasion pathways
title_sort forward genetic screen reveals a primary role for plasmodium falciparum reticulocyte binding protein homologue 2a and 2b in determining alternative erythrocyte invasion pathways
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6289454/
https://www.ncbi.nlm.nih.gov/pubmed/30496294
http://dx.doi.org/10.1371/journal.ppat.1007436
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