On the contribution of the rodent model Plasmodium chabaudi for understanding the genetics of drug resistance in malaria

被引:3
作者
Cravo, Pedro [1 ]
机构
[1] Univ Nova Lisboa, Global Hlth & Trop Med, Inst Higiene & Med Trop, Rua Junqueira,n 100, P-1349008 Lisbon, Portugal
基金
巴西圣保罗研究基金会;
关键词
Malaria; Experimental evolution; Drug resistance; Genetics; Genomics; Plasmodium chabaudi; CHLOROQUINE-RESISTANCE; DIHYDROFOLATE-REDUCTASE; POINT MUTATIONS; ARTEMISININ RESISTANCE; FALCIPARUM; PYRIMETHAMINE; PFCRT; TRANSPORTER; SULFADOXINE; MEFLOQUINE;
D O I
10.1016/j.parint.2022.102623
中图分类号
R38 [医学寄生虫学]; Q [生物科学];
学科分类号
07 ; 0710 ; 09 ; 100103 ;
摘要
Malaria is a devastating disease that still claims over half a million lives every year, mostly in sub-Saharan Africa. One of the main barriers to malaria control is the evolution and propagation of drug-resistant mutant parasites. Knowing the genes and respective mutations responsible for drug resistance facilitates the design of drugs with novel modes of action and allows predicting and monitoring drug resistance in natural parasite populations in real-time. The best way to identify these mutations is to experimentally evolve resistance to the drug in question and then comparing the genomes of the drug-resistant mutants to that of the sensitive pro-genitor parasites. This simple evolutive concept was the starting point for the development of a paradigm over the years, based on the use of the rodent malaria parasite Plasmodium chabaudi to unravel the genetics of drug resistance in malaria. It involves the use of a cloned parasite isolate (P. chabaudi AS) whose genome is well characterized, to artificially select resistance to given drugs through serial passages in mice under slowly increasing drug pressure. The end resulting parasites are cloned and the genetic mutations are then discovered through Linkage Group Selection, a technique conceived by Prof. Richard Carter and his group, and/or Whole Genome Sequencing. The precise role of these mutations can then be interrogated in malaria parasites of humans through allelic replacement experiments and/or genotype-phenotype association studies in natural parasite populations. Using this paradigm, all the mutations underlying resistance to the most important antimalarial drugs were identified, most of which were pioneering and later shown to also play a role in drug resistance in natural infections of human malaria parasites. This supports the use of P. chabaudi a fast-track predictive model to identify candidate genetic markers of resistance to present and future antimalarial drugs and improving our understanding of the biology of resistance.
引用
收藏
页数:10
相关论文
共 64 条
[1]   Malaria parasites can develop stable resistance to artemisinin but lack mutations in candidate genes atp6 (Encoding the sarcoplasmic and endoplasmic reticulum Ca2+ ATPase), tctp, mdr1, and cg10 [J].
Afonso, A ;
Hunt, P ;
Cheesman, S ;
Alves, AC ;
Cunha, CV ;
do Rosário, V ;
Cravo, P .
ANTIMICROBIAL AGENTS AND CHEMOTHERAPY, 2006, 50 (02) :480-489
[2]   Spread of Artemisinin Resistance in Plasmodium falciparum Malaria [J].
Ashley, E. A. ;
Dhorda, M. ;
Fairhurst, R. M. ;
Amaratunga, C. ;
Lim, P. ;
Suon, S. ;
Sreng, S. ;
Anderson, J. M. ;
Mao, S. ;
Sam, B. ;
Sopha, C. ;
Chuor, C. M. ;
Nguon, C. ;
Sovannaroth, S. ;
Pukrittayakamee, S. ;
Jittamala, P. ;
Chotivanich, K. ;
Chutasmit, K. ;
Suchatsoonthorn, C. ;
Runcharoen, R. ;
Hien, T. T. ;
Thuy-Nhien, N. T. ;
Thanh, N. V. ;
Phu, N. H. ;
Htut, Y. ;
Han, K-T. ;
Aye, K. H. ;
Mokuolu, O. A. ;
Olaosebikan, R. R. ;
Folaranmi, O. O. ;
Mayxay, M. ;
Khanthavong, M. ;
Hongvanthong, B. ;
Newton, P. N. ;
Onyamboko, M. A. ;
Fanello, C. I. ;
Tshefu, A. K. ;
Mishra, N. ;
Valecha, N. ;
Phyo, A. P. ;
Nosten, F. ;
Yi, P. ;
Tripura, R. ;
Borrmann, S. ;
Bashraheil, M. ;
Peshu, J. ;
Faiz, M. A. ;
Ghose, A. ;
Hossain, M. A. ;
Samad, R. .
NEW ENGLAND JOURNAL OF MEDICINE, 2014, 371 (05) :411-423
[3]   High-level chloroquine resistance in sudanese isolates of Plasmodium falciparum is associated with mutations in the chloroquine resistance transporter gene pfcrt and the multidrug resistance gene pfmdr1 [J].
Babiker, HA ;
Pringle, SJ ;
Abdel-Muhsin, A ;
Mackinnon, M ;
Hunt, P ;
Walliker, D .
JOURNAL OF INFECTIOUS DISEASES, 2001, 183 (10) :1535-1538
[4]   POINT MUTATIONS IN THE DIHYDROFOLATE-REDUCTASE THYMIDYLATE SYNTHASE GENE AND PYRIMETHAMINE AND CYCLOGUANIL RESISTANCE IN PLASMODIUM-FALCIPARUM [J].
BASCO, LK ;
DEPECOULAS, PE ;
WILSON, CM ;
LEBRAS, J ;
MAZABRAUD, A .
MOLECULAR AND BIOCHEMICAL PARASITOLOGY, 1995, 69 (01) :135-138
[5]   The newly discovered role of endocytosis in artemisinin resistance [J].
Behrens, Hannah Michaela ;
Schmidt, Sabine ;
Spielmann, Tobias .
MEDICINAL RESEARCH REVIEWS, 2021, 41 (06) :2998-3022
[6]   Signals for sorting of transmembrane proteins to endosomes and lysosomes [J].
Bonifacino, JS ;
Traub, LM .
ANNUAL REVIEW OF BIOCHEMISTRY, 2003, 72 :395-447
[7]   Genomewide Scan Reveals Amplification of mdr1 as a Common Denominator of Resistance to Mefloquine, Lumefantrine, and Artemisinin in Plasmodium chabaudi Malaria Parasites [J].
Borges, Sofia ;
Cravo, Pedro ;
Creasey, Alison ;
Fawcett, Richard ;
Modrzynska, Katarzyna ;
Rodrigues, Louise ;
Martinelli, Axel ;
Hunt, Paul .
ANTIMICROBIAL AGENTS AND CHEMOTHERAPY, 2011, 55 (10) :4858-4865
[8]   PfCRT and the trans-vacuolar proton electrochemical gradient:: regulating the access of chloroquine to ferriprotoporphyrin IX [J].
Bray, Patrick G. ;
Mungthin, Mathirut ;
Hastings, Ian M. ;
Biagini, Giancarlo A. ;
Saidu, Dauda K. ;
Lakshmanan, Viswanathan ;
Johnson, David J. ;
Hughes, Ruth H. ;
Stocks, Paul A. ;
O'Neill, Paul M. ;
Fidock, David A. ;
Warhurst, David C. ;
Ward, Stephen A. .
MOLECULAR MICROBIOLOGY, 2006, 62 (01) :238-251
[9]   MALARIA AND ITS CONTROL - PRESENT SITUATION AND FUTURE-PROSPECTS [J].
BRUCECHWATT, LJ .
ANNUAL REVIEW OF PUBLIC HEALTH, 1987, 8 :75-110
[10]   The molecular basis of antimalarial drug resistance in Plasmodium vivax [J].
Buyon, Lucas E. ;
Elsworth, Brendan ;
Duraisingh, Manoj T. .
INTERNATIONAL JOURNAL FOR PARASITOLOGY-DRUGS AND DRUG RESISTANCE, 2021, 16 :23-37