Cargando…

Genome-wide association analysis identifies genetic loci associated with resistance to multiple antimalarials in Plasmodium falciparum from China-Myanmar border

Drug resistance has emerged as one of the greatest challenges facing malaria control. The recent emergence of resistance to artemisinin (ART) and its partner drugs in ART-based combination therapies (ACT) is threatening the efficacy of this front-line regimen for treating Plasmodium falciparum paras...

Descripción completa

Detalles Bibliográficos
Autores principales: Wang, Zenglei, Cabrera, Mynthia, Yang, Jingyun, Yuan, Lili, Gupta, Bhavna, Liang, Xiaoying, Kemirembe, Karen, Shrestha, Sony, Brashear, Awtum, Li, Xiaolian, Porcella, Stephen F., Miao, Jun, Yang, Zhaoqing, Su, Xin-zhuan, Cui, Liwang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5046179/
https://www.ncbi.nlm.nih.gov/pubmed/27694982
http://dx.doi.org/10.1038/srep33891
_version_ 1782457248411287552
author Wang, Zenglei
Cabrera, Mynthia
Yang, Jingyun
Yuan, Lili
Gupta, Bhavna
Liang, Xiaoying
Kemirembe, Karen
Shrestha, Sony
Brashear, Awtum
Li, Xiaolian
Porcella, Stephen F.
Miao, Jun
Yang, Zhaoqing
Su, Xin-zhuan
Cui, Liwang
author_facet Wang, Zenglei
Cabrera, Mynthia
Yang, Jingyun
Yuan, Lili
Gupta, Bhavna
Liang, Xiaoying
Kemirembe, Karen
Shrestha, Sony
Brashear, Awtum
Li, Xiaolian
Porcella, Stephen F.
Miao, Jun
Yang, Zhaoqing
Su, Xin-zhuan
Cui, Liwang
author_sort Wang, Zenglei
collection PubMed
description Drug resistance has emerged as one of the greatest challenges facing malaria control. The recent emergence of resistance to artemisinin (ART) and its partner drugs in ART-based combination therapies (ACT) is threatening the efficacy of this front-line regimen for treating Plasmodium falciparum parasites. Thus, an understanding of the molecular mechanisms that underlie the resistance to ART and the partner drugs has become a high priority for resistance containment and malaria management. Using genome-wide association studies, we investigated the associations of genome-wide single nucleotide polymorphisms with in vitro sensitivities to 10 commonly used antimalarial drugs in 94 P. falciparum isolates from the China-Myanmar border area, a region with the longest history of ART usage. We identified several loci associated with various drugs, including those containing pfcrt and pfdhfr. Of particular interest is a locus on chromosome 10 containing the autophagy-related protein 18 (ATG18) associated with decreased sensitivities to dihydroartemisinin, artemether and piperaquine – an ACT partner drug in this area. ATG18 is a phosphatidylinositol-3-phosphate binding protein essential for autophagy and recently identified as a potential ART target. Further investigations on the ATG18 and genes at the chromosome 10 locus may provide an important lead for a connection between ART resistance and autophagy.
format Online
Article
Text
id pubmed-5046179
institution National Center for Biotechnology Information
language English
publishDate 2016
publisher Nature Publishing Group
record_format MEDLINE/PubMed
spelling pubmed-50461792016-10-11 Genome-wide association analysis identifies genetic loci associated with resistance to multiple antimalarials in Plasmodium falciparum from China-Myanmar border Wang, Zenglei Cabrera, Mynthia Yang, Jingyun Yuan, Lili Gupta, Bhavna Liang, Xiaoying Kemirembe, Karen Shrestha, Sony Brashear, Awtum Li, Xiaolian Porcella, Stephen F. Miao, Jun Yang, Zhaoqing Su, Xin-zhuan Cui, Liwang Sci Rep Article Drug resistance has emerged as one of the greatest challenges facing malaria control. The recent emergence of resistance to artemisinin (ART) and its partner drugs in ART-based combination therapies (ACT) is threatening the efficacy of this front-line regimen for treating Plasmodium falciparum parasites. Thus, an understanding of the molecular mechanisms that underlie the resistance to ART and the partner drugs has become a high priority for resistance containment and malaria management. Using genome-wide association studies, we investigated the associations of genome-wide single nucleotide polymorphisms with in vitro sensitivities to 10 commonly used antimalarial drugs in 94 P. falciparum isolates from the China-Myanmar border area, a region with the longest history of ART usage. We identified several loci associated with various drugs, including those containing pfcrt and pfdhfr. Of particular interest is a locus on chromosome 10 containing the autophagy-related protein 18 (ATG18) associated with decreased sensitivities to dihydroartemisinin, artemether and piperaquine – an ACT partner drug in this area. ATG18 is a phosphatidylinositol-3-phosphate binding protein essential for autophagy and recently identified as a potential ART target. Further investigations on the ATG18 and genes at the chromosome 10 locus may provide an important lead for a connection between ART resistance and autophagy. Nature Publishing Group 2016-10-03 /pmc/articles/PMC5046179/ /pubmed/27694982 http://dx.doi.org/10.1038/srep33891 Text en Copyright © 2016, The Author(s) http://creativecommons.org/licenses/by/4.0/ This work is licensed under a Creative Commons Attribution 4.0 International License. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/
spellingShingle Article
Wang, Zenglei
Cabrera, Mynthia
Yang, Jingyun
Yuan, Lili
Gupta, Bhavna
Liang, Xiaoying
Kemirembe, Karen
Shrestha, Sony
Brashear, Awtum
Li, Xiaolian
Porcella, Stephen F.
Miao, Jun
Yang, Zhaoqing
Su, Xin-zhuan
Cui, Liwang
Genome-wide association analysis identifies genetic loci associated with resistance to multiple antimalarials in Plasmodium falciparum from China-Myanmar border
title Genome-wide association analysis identifies genetic loci associated with resistance to multiple antimalarials in Plasmodium falciparum from China-Myanmar border
title_full Genome-wide association analysis identifies genetic loci associated with resistance to multiple antimalarials in Plasmodium falciparum from China-Myanmar border
title_fullStr Genome-wide association analysis identifies genetic loci associated with resistance to multiple antimalarials in Plasmodium falciparum from China-Myanmar border
title_full_unstemmed Genome-wide association analysis identifies genetic loci associated with resistance to multiple antimalarials in Plasmodium falciparum from China-Myanmar border
title_short Genome-wide association analysis identifies genetic loci associated with resistance to multiple antimalarials in Plasmodium falciparum from China-Myanmar border
title_sort genome-wide association analysis identifies genetic loci associated with resistance to multiple antimalarials in plasmodium falciparum from china-myanmar border
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5046179/
https://www.ncbi.nlm.nih.gov/pubmed/27694982
http://dx.doi.org/10.1038/srep33891
work_keys_str_mv AT wangzenglei genomewideassociationanalysisidentifiesgeneticlociassociatedwithresistancetomultipleantimalarialsinplasmodiumfalciparumfromchinamyanmarborder
AT cabreramynthia genomewideassociationanalysisidentifiesgeneticlociassociatedwithresistancetomultipleantimalarialsinplasmodiumfalciparumfromchinamyanmarborder
AT yangjingyun genomewideassociationanalysisidentifiesgeneticlociassociatedwithresistancetomultipleantimalarialsinplasmodiumfalciparumfromchinamyanmarborder
AT yuanlili genomewideassociationanalysisidentifiesgeneticlociassociatedwithresistancetomultipleantimalarialsinplasmodiumfalciparumfromchinamyanmarborder
AT guptabhavna genomewideassociationanalysisidentifiesgeneticlociassociatedwithresistancetomultipleantimalarialsinplasmodiumfalciparumfromchinamyanmarborder
AT liangxiaoying genomewideassociationanalysisidentifiesgeneticlociassociatedwithresistancetomultipleantimalarialsinplasmodiumfalciparumfromchinamyanmarborder
AT kemirembekaren genomewideassociationanalysisidentifiesgeneticlociassociatedwithresistancetomultipleantimalarialsinplasmodiumfalciparumfromchinamyanmarborder
AT shresthasony genomewideassociationanalysisidentifiesgeneticlociassociatedwithresistancetomultipleantimalarialsinplasmodiumfalciparumfromchinamyanmarborder
AT brashearawtum genomewideassociationanalysisidentifiesgeneticlociassociatedwithresistancetomultipleantimalarialsinplasmodiumfalciparumfromchinamyanmarborder
AT lixiaolian genomewideassociationanalysisidentifiesgeneticlociassociatedwithresistancetomultipleantimalarialsinplasmodiumfalciparumfromchinamyanmarborder
AT porcellastephenf genomewideassociationanalysisidentifiesgeneticlociassociatedwithresistancetomultipleantimalarialsinplasmodiumfalciparumfromchinamyanmarborder
AT miaojun genomewideassociationanalysisidentifiesgeneticlociassociatedwithresistancetomultipleantimalarialsinplasmodiumfalciparumfromchinamyanmarborder
AT yangzhaoqing genomewideassociationanalysisidentifiesgeneticlociassociatedwithresistancetomultipleantimalarialsinplasmodiumfalciparumfromchinamyanmarborder
AT suxinzhuan genomewideassociationanalysisidentifiesgeneticlociassociatedwithresistancetomultipleantimalarialsinplasmodiumfalciparumfromchinamyanmarborder
AT cuiliwang genomewideassociationanalysisidentifiesgeneticlociassociatedwithresistancetomultipleantimalarialsinplasmodiumfalciparumfromchinamyanmarborder