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Molecular genetic diversity and bioinformatic analysis of Leucocytozoon sabrazesi based on the mitochondrial genes cytb, coxI and coxIII and co-infection of Plasmodium spp.

Leucocytozoon sabrazesi is an intracellular haemoprotozoan parasite responsible for leucocytozoonosis, which is transmitted by insect vectors and affects chickens in tropical and subtropical areas in many countries. It causes huge economic losses due to decreased meat and egg production. In the pres...

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Autores principales: Nooroong, Pornpiroon, Watthanadirek, Amaya, Minsakorn, Sutthida, Poolsawat, Napassorn, Junsiri, Witchuta, Srionrod, Nitipon, Sangchuai, Siriphan, Chawengkirttikul, Runglawan, Anuracpreeda, Panat
Formato: Online Artículo Texto
Lenguaje:English
Publicado: EDP Sciences 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9044968/
https://www.ncbi.nlm.nih.gov/pubmed/35475784
http://dx.doi.org/10.1051/parasite/2022022
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author Nooroong, Pornpiroon
Watthanadirek, Amaya
Minsakorn, Sutthida
Poolsawat, Napassorn
Junsiri, Witchuta
Srionrod, Nitipon
Sangchuai, Siriphan
Chawengkirttikul, Runglawan
Anuracpreeda, Panat
author_facet Nooroong, Pornpiroon
Watthanadirek, Amaya
Minsakorn, Sutthida
Poolsawat, Napassorn
Junsiri, Witchuta
Srionrod, Nitipon
Sangchuai, Siriphan
Chawengkirttikul, Runglawan
Anuracpreeda, Panat
author_sort Nooroong, Pornpiroon
collection PubMed
description Leucocytozoon sabrazesi is an intracellular haemoprotozoan parasite responsible for leucocytozoonosis, which is transmitted by insect vectors and affects chickens in tropical and subtropical areas in many countries. It causes huge economic losses due to decreased meat and egg production. In the present study, we used nested PCR to determine the genetic diversity of L. sabrazesi based on the cytb, coxI, coxIII and concatenated genes in chickens in Thailand. In addition, we found co-infections between L. sabrazesi and Plasmodium spp. (P. gallinaceum or P. juxtanucleare) in chickens that were not identified by microscopic examination of blood smears. The phylogenetic analysis indicated that L. sabrazesi cytb and coxIII genes were conserved with similarity ranging from 99.9 to 100% and 98 to 100%, respectively whereas the coxI gene was diverse, with similarities ranging from 97 to 100%. These findings ascertained the nucleotide analysis of the cytb, coxI, coxIII and concatenated sequences in which 4, 8, 10 and 9 haplotypes were found, respectively. In addition, it was found that the large number of synonymous substitutions and conservative amino acid replacements in these mitochondrial genes occurred by non-synonymous substitution. The evolutionary analysis of the K(a)/K(s) ratio supported purifying selection and the negative values of both Fu’s Fs and Tajima’s D indicate selective sweep especially for the coxI gene. The entropy and Simplot analysis showed that the genetic variation in populations of Plasmodium spp. was higher than in Leucocytozoon. Hence, the nucleotide sequences of three mitochondrial genes could reflect the evolutionary analysis and geographic distribution of this protozoan population that switches hosts during its life cycle.
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spelling pubmed-90449682022-05-16 Molecular genetic diversity and bioinformatic analysis of Leucocytozoon sabrazesi based on the mitochondrial genes cytb, coxI and coxIII and co-infection of Plasmodium spp. Nooroong, Pornpiroon Watthanadirek, Amaya Minsakorn, Sutthida Poolsawat, Napassorn Junsiri, Witchuta Srionrod, Nitipon Sangchuai, Siriphan Chawengkirttikul, Runglawan Anuracpreeda, Panat Parasite Research Article Leucocytozoon sabrazesi is an intracellular haemoprotozoan parasite responsible for leucocytozoonosis, which is transmitted by insect vectors and affects chickens in tropical and subtropical areas in many countries. It causes huge economic losses due to decreased meat and egg production. In the present study, we used nested PCR to determine the genetic diversity of L. sabrazesi based on the cytb, coxI, coxIII and concatenated genes in chickens in Thailand. In addition, we found co-infections between L. sabrazesi and Plasmodium spp. (P. gallinaceum or P. juxtanucleare) in chickens that were not identified by microscopic examination of blood smears. The phylogenetic analysis indicated that L. sabrazesi cytb and coxIII genes were conserved with similarity ranging from 99.9 to 100% and 98 to 100%, respectively whereas the coxI gene was diverse, with similarities ranging from 97 to 100%. These findings ascertained the nucleotide analysis of the cytb, coxI, coxIII and concatenated sequences in which 4, 8, 10 and 9 haplotypes were found, respectively. In addition, it was found that the large number of synonymous substitutions and conservative amino acid replacements in these mitochondrial genes occurred by non-synonymous substitution. The evolutionary analysis of the K(a)/K(s) ratio supported purifying selection and the negative values of both Fu’s Fs and Tajima’s D indicate selective sweep especially for the coxI gene. The entropy and Simplot analysis showed that the genetic variation in populations of Plasmodium spp. was higher than in Leucocytozoon. Hence, the nucleotide sequences of three mitochondrial genes could reflect the evolutionary analysis and geographic distribution of this protozoan population that switches hosts during its life cycle. EDP Sciences 2022-04-27 /pmc/articles/PMC9044968/ /pubmed/35475784 http://dx.doi.org/10.1051/parasite/2022022 Text en © P. Nooroong et al., published by EDP Sciences, 2022 https://creativecommons.org/licenses/by/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0 (https://creativecommons.org/licenses/by/4.0/) ), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Nooroong, Pornpiroon
Watthanadirek, Amaya
Minsakorn, Sutthida
Poolsawat, Napassorn
Junsiri, Witchuta
Srionrod, Nitipon
Sangchuai, Siriphan
Chawengkirttikul, Runglawan
Anuracpreeda, Panat
Molecular genetic diversity and bioinformatic analysis of Leucocytozoon sabrazesi based on the mitochondrial genes cytb, coxI and coxIII and co-infection of Plasmodium spp.
title Molecular genetic diversity and bioinformatic analysis of Leucocytozoon sabrazesi based on the mitochondrial genes cytb, coxI and coxIII and co-infection of Plasmodium spp.
title_full Molecular genetic diversity and bioinformatic analysis of Leucocytozoon sabrazesi based on the mitochondrial genes cytb, coxI and coxIII and co-infection of Plasmodium spp.
title_fullStr Molecular genetic diversity and bioinformatic analysis of Leucocytozoon sabrazesi based on the mitochondrial genes cytb, coxI and coxIII and co-infection of Plasmodium spp.
title_full_unstemmed Molecular genetic diversity and bioinformatic analysis of Leucocytozoon sabrazesi based on the mitochondrial genes cytb, coxI and coxIII and co-infection of Plasmodium spp.
title_short Molecular genetic diversity and bioinformatic analysis of Leucocytozoon sabrazesi based on the mitochondrial genes cytb, coxI and coxIII and co-infection of Plasmodium spp.
title_sort molecular genetic diversity and bioinformatic analysis of leucocytozoon sabrazesi based on the mitochondrial genes cytb, coxi and coxiii and co-infection of plasmodium spp.
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9044968/
https://www.ncbi.nlm.nih.gov/pubmed/35475784
http://dx.doi.org/10.1051/parasite/2022022
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