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Patterns of Selection in Anti-Malarial Immune Genes in Malaria Vectors: Evidence for Adaptive Evolution in LRIM1 in Anopheles arabiensis

BACKGROUND: Co-evolution between Plasmodium species and its vectors may result in adaptive changes in genes that are crucial components of the vector's defense against the pathogen. By analyzing which genes show evidence of positive selection in malaria vectors, but not in closely related non-v...

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Autores principales: Slotman, Michel A., Parmakelis, Aristeidis, Marshall, Jonathon C., Awono-Ambene, Parfait H., Antonio-Nkondjo, Christophe, Simard, Frederic, Caccone, Adalgisa, Powell, Jeffrey R.
Formato: Texto
Lenguaje:English
Publicado: Public Library of Science 2007
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1945087/
https://www.ncbi.nlm.nih.gov/pubmed/17726523
http://dx.doi.org/10.1371/journal.pone.0000793
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author Slotman, Michel A.
Parmakelis, Aristeidis
Marshall, Jonathon C.
Awono-Ambene, Parfait H.
Antonio-Nkondjo, Christophe
Simard, Frederic
Caccone, Adalgisa
Powell, Jeffrey R.
author_facet Slotman, Michel A.
Parmakelis, Aristeidis
Marshall, Jonathon C.
Awono-Ambene, Parfait H.
Antonio-Nkondjo, Christophe
Simard, Frederic
Caccone, Adalgisa
Powell, Jeffrey R.
author_sort Slotman, Michel A.
collection PubMed
description BACKGROUND: Co-evolution between Plasmodium species and its vectors may result in adaptive changes in genes that are crucial components of the vector's defense against the pathogen. By analyzing which genes show evidence of positive selection in malaria vectors, but not in closely related non-vectors, we can identify genes that are crucial for the mosquito's resistance against Plasmodium. METHODOLOGY/PRINCIPLE FINDINGS: We investigated genetic variation of three anti-malarial genes; CEC1, GNBP-B1 and LRIM1, in both vector and non-vector species of the Anopheles gambiae complex. Whereas little protein differentiation was observed between species in CEC1 and GNBP-B1, McDonald-Kreitman and maximum likelihood tests of positive selection show that LRIM1 underwent adaptive evolution in a primary malaria vector; An. arabiensis. In particular, two adjacent codons show clear signs of adaptation by having accumulated three out of four replacement substitutions. Furthermore, our data indicate that this LRIM1 allele has introgressed from An. arabiensis into the other main malaria vector An. gambiae. CONCLUSIONS/SIGNIFICANCE: Although no evidence exists to link the adaptation of LRIM1 to P. falciparum infection, an adaptive response of a known anti-malarial gene in a primary malaria vector is intriguing, and may suggest that this gene could play a role in Plasmodium resistance in An. arabiensis. If so, our data also predicts that LRIM1 alleles in An. gambiae vary in their level of resistance against P. falciparum.
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spelling pubmed-19450872007-08-29 Patterns of Selection in Anti-Malarial Immune Genes in Malaria Vectors: Evidence for Adaptive Evolution in LRIM1 in Anopheles arabiensis Slotman, Michel A. Parmakelis, Aristeidis Marshall, Jonathon C. Awono-Ambene, Parfait H. Antonio-Nkondjo, Christophe Simard, Frederic Caccone, Adalgisa Powell, Jeffrey R. PLoS One Research Article BACKGROUND: Co-evolution between Plasmodium species and its vectors may result in adaptive changes in genes that are crucial components of the vector's defense against the pathogen. By analyzing which genes show evidence of positive selection in malaria vectors, but not in closely related non-vectors, we can identify genes that are crucial for the mosquito's resistance against Plasmodium. METHODOLOGY/PRINCIPLE FINDINGS: We investigated genetic variation of three anti-malarial genes; CEC1, GNBP-B1 and LRIM1, in both vector and non-vector species of the Anopheles gambiae complex. Whereas little protein differentiation was observed between species in CEC1 and GNBP-B1, McDonald-Kreitman and maximum likelihood tests of positive selection show that LRIM1 underwent adaptive evolution in a primary malaria vector; An. arabiensis. In particular, two adjacent codons show clear signs of adaptation by having accumulated three out of four replacement substitutions. Furthermore, our data indicate that this LRIM1 allele has introgressed from An. arabiensis into the other main malaria vector An. gambiae. CONCLUSIONS/SIGNIFICANCE: Although no evidence exists to link the adaptation of LRIM1 to P. falciparum infection, an adaptive response of a known anti-malarial gene in a primary malaria vector is intriguing, and may suggest that this gene could play a role in Plasmodium resistance in An. arabiensis. If so, our data also predicts that LRIM1 alleles in An. gambiae vary in their level of resistance against P. falciparum. Public Library of Science 2007-08-29 /pmc/articles/PMC1945087/ /pubmed/17726523 http://dx.doi.org/10.1371/journal.pone.0000793 Text en Slotman 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, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Slotman, Michel A.
Parmakelis, Aristeidis
Marshall, Jonathon C.
Awono-Ambene, Parfait H.
Antonio-Nkondjo, Christophe
Simard, Frederic
Caccone, Adalgisa
Powell, Jeffrey R.
Patterns of Selection in Anti-Malarial Immune Genes in Malaria Vectors: Evidence for Adaptive Evolution in LRIM1 in Anopheles arabiensis
title Patterns of Selection in Anti-Malarial Immune Genes in Malaria Vectors: Evidence for Adaptive Evolution in LRIM1 in Anopheles arabiensis
title_full Patterns of Selection in Anti-Malarial Immune Genes in Malaria Vectors: Evidence for Adaptive Evolution in LRIM1 in Anopheles arabiensis
title_fullStr Patterns of Selection in Anti-Malarial Immune Genes in Malaria Vectors: Evidence for Adaptive Evolution in LRIM1 in Anopheles arabiensis
title_full_unstemmed Patterns of Selection in Anti-Malarial Immune Genes in Malaria Vectors: Evidence for Adaptive Evolution in LRIM1 in Anopheles arabiensis
title_short Patterns of Selection in Anti-Malarial Immune Genes in Malaria Vectors: Evidence for Adaptive Evolution in LRIM1 in Anopheles arabiensis
title_sort patterns of selection in anti-malarial immune genes in malaria vectors: evidence for adaptive evolution in lrim1 in anopheles arabiensis
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1945087/
https://www.ncbi.nlm.nih.gov/pubmed/17726523
http://dx.doi.org/10.1371/journal.pone.0000793
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