Axel Martinelli
University of Edinburgh
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Featured researches published by Axel Martinelli.
International Journal for Parasitology | 2008
Blandine Franke-Fayard; D. Djokovic; Maaike W. van Dooren; Jai Ramesar; Andrew P. Waters; M.O. Falade; Michel Kranendonk; Axel Martinelli; Pedro Cravo; Chris J. Janse
We report two improved assays for in vitro and in vivo screening of chemicals with potential anti-malarial activity against the blood stages of the rodent malaria parasite Plasmodiumberghei. These assays are based on the determination of luciferase activity (luminescence) in small blood samples containing transgenic blood stage parasites that express luciferase under the control of a promoter that is either schizont-specific (ama-1) or constitutive (eef1alphaa). Assay 1, the in vitro drug luminescence (ITDL) assay, measured the success of schizont maturation in the presence of candidate drugs quantifying luciferase activity in mature schizonts only (ama-1 promoter). The ITDL assay generated drug-inhibition curves and EC(50) values comparable to those obtained with standard in vitro drug-susceptibility assays. The second assay, the in vivo drug-luminescence (IVDL) assay, measured parasite growth in vivo in a standard 4-day suppressive drug test, monitored by measuring the constitutive luciferase activity of circulating parasites (eef1alphaa promoter). The IVDL assay generates growth-curves that are identical to those obtained by manual counting of parasites in Giemsa-stained smears. The reading of luminescence assays is rapid, requires a minimal number of handling steps and no experience with parasite morphology or handling fluorescence-activated cell sorters, produces no radioactive waste and test-plates can be stored for prolonged periods before processing. Both tests are suitable for use in larger-scale in vitro and in vivo screening of drugs. The standard methodology of anti-malarial drug screening and validation, which includes testing in rodent models of malaria, can be improved by the incorporation of such assays.
BMC Genomics | 2010
Paul Hunt; Axel Martinelli; Katarzyna Modrzynska; Sofia T. Borges; Alison M. Creasey; Louise Rodrigues; Dario Beraldi; Laurence Loewe; Richard Fawcett; Sujai Kumar; Marian Thomson; Urmi Trivedi; Thomas D. Otto; Arnab Pain; Mark Blaxter; Pedro Cravo
BackgroundClassical and quantitative linkage analyses of genetic crosses have traditionally been used to map genes of interest, such as those conferring chloroquine or quinine resistance in malaria parasites. Next-generation sequencing technologies now present the possibility of determining genome-wide genetic variation at single base-pair resolution. Here, we combine in vivo experimental evolution, a rapid genetic strategy and whole genome re-sequencing to identify the precise genetic basis of artemisinin resistance in a lineage of the rodent malaria parasite, Plasmodium chabaudi. Such genetic markers will further the investigation of resistance and its control in natural infections of the human malaria, P. falciparum.ResultsA lineage of isogenic in vivo drug-selected mutant P. chabaudi parasites was investigated. By measuring the artemisinin responses of these clones, the appearance of an in vivo artemisinin resistance phenotype within the lineage was defined. The underlying genetic locus was mapped to a region of chromosome 2 by Linkage Group Selection in two different genetic crosses. Whole-genome deep coverage short-read re-sequencing (Illumina® Solexa) defined the point mutations, insertions, deletions and copy-number variations arising in the lineage. Eight point mutations arise within the mutant lineage, only one of which appears on chromosome 2. This missense mutation arises contemporaneously with artemisinin resistance and maps to a gene encoding a de-ubiquitinating enzyme.ConclusionsThis integrated approach facilitates the rapid identification of mutations conferring selectable phenotypes, without prior knowledge of biological and molecular mechanisms. For malaria, this model can identify candidate genes before resistant parasites are commonly observed in natural human malaria populations.
PLOS ONE | 2010
Ronan Jambou; Axel Martinelli; João Pinto; Simonetta Gribaldo; Eric Legrand; Makhtar Niang; Nimol Kim; Lim Pharath; Béatrice Volnay; Marie Therese Ekala; Christiane Bouchier; Thierry Fandeur; Pedro Berzosa; Agustín Benito; Isabel Ferreira; C. Ferreira; Pedro Paulo Vieira; Maria das Graças Costa Alecrim; Odile Mercereau-Puijalon; Pedro Cravo
Artemisinin, a thapsigargin-like sesquiterpene has been shown to inhibit the Plasmodium falciparum sarco/endoplasmic reticulum calcium-ATPase PfSERCA. To collect baseline pfserca sequence information before field deployment of Artemisinin-based Combination therapies that may select mutant parasites, we conducted a sequence analysis of 100 isolates from multiple sites in Africa, Asia and South America. Coding sequence diversity was large, with 29 mutated codons, including 32 SNPs (average of one SNP/115 bp), of which 19 were novel mutations. Most SNP detected in this study were clustered within a region in the cytosolic head of the protein. The PfSERCA functional domains were very well conserved, with non synonymous mutations located outside the functional domains, except for the S769N mutation associated in French Guiana with elevated IC50 for artemether. The S769N mutation is located close to the hinge of the headpiece, which in other species modulates calcium affinity and in consequence efficacy of inhibitors, possibly linking calcium homeostasis to drug resistance. Genetic diversity was highest in Senegal, Brazil and French Guiana, and few mutations were identified in Asia. Population genetic analysis was conducted for a partial fragment of the gene encompassing nucleotide coordinates 87-2862 (unambiguous sequence available for 96 isolates). This supported a geographic clustering, with a separation between Old and New World samples and one dominant ancestral haplotype. Genetic drift alone cannot explain the observed polymorphism, suggesting that other evolutionary mechanisms are operating. One possible contributor could be the frequency of haemoglobinopathies that are associated with calcium dysregulation in the erythrocyte.
Tropical Medicine & International Health | 2008
Isabel D. Ferreira; Axel Martinelli; Louise Rodrigues; Ediclei Lima do Carmo; Virgílio E. do Rosário; Marinete Marins Póvoa; Pedro Cravo
Objective To evaluate the in vitro efficacy of artesunate (ATN) and artemether (ATH) against Plasmodium falciparum isolates from the Brazilian Amazon state of Pará and to search for mutations and/or altered copy numbers in the putative resistance‐associated pfcrt, pfmdr1 and pfATPase6 genes.
Molecular and Biochemical Parasitology | 2002
Katrina Grech; Axel Martinelli; Sisira Pathirana; David Walliker; Paul Hunt; Richard Carter
We have used the method of amplified fragment length polymorphism (AFLP) to identify genetic polymorphisms between two cloned isolates of the rodent malaria parasite Plasmodium chabaudi chabaudi. The method employs polymerase chain reaction (PCR)-amplification of genomic DNA fragments cut with specific combinations of restriction endonucleases; we used EcoRI and Tru1I (isoschizomer of MseI). We have identified 819 parasite clone-specific AFLPs between P. c. chabaudi clones AS and AJ. Of these, 403 fragments were specific to AS and 416 to AJ. In preparing blood stage parasites for DNA, nucleated host cells were removed by successive filtration of infected blood through powdered cellulose and Plasmodipur filters. This reduced nucleated host cell contamination to around 1-10 per million parasite nuclei and reduced host DNA to below the limit of detection by the AFLP method. Analysis of our results showed that the total number of PCR-amplified fragments of parasite DNA was consistent with the predicted number of EcoRI sites in the parasite genome. 19.4% of all amplified fragments were P. c. chabaudi clone-specific. From this figure we estimated that the diversity between clones AS and AJ, measured as the probability of a sequence difference, was between about 8 x 10(-3) and 4.6 x 10(-4) per base pair. This is consistent with the sequence diversity found between alleles of candidate drug resistance genes from P. c. chabaudi clones AS and AJ identified and sequenced in this laboratory.
Tropical Medicine & International Health | 2007
Isabel D. Ferreira; Dinora Lopes; Axel Martinelli; C.M.M. Ferreira; Virgílio E. do Rosário; Pedro Cravo
Objective To evaluate the basal in vitro responses of Plasmodium falciparum isolates collected in The Democratic Republic of São Tomé and Príncipe to artemether (ATH), artesunate (ATN) and amodiaquine (AMQ).
Malaria Journal | 2005
Axel Martinelli; Paul Hunt; Richard Fawcett; Pedro Vl Cravo; David Walliker; Richard Carter
BackgroundPlasmodium chabaudi chabaudi can be considered as a rodent model of human malaria parasites in the genetic analysis of important characters such as drug resistance and immunity. Despite the availability of some genome sequence data, an extensive genetic linkage map is needed for mapping the genes involved in certain traits.MethodsThe inheritance of 672 Amplified Fragment Length Polymorphism (AFLP) markers from two parental clones (AS and AJ) of P. c. chabaudi was determined in 28 independent recombinant progeny clones. These, AFLP markers and 42 previously mapped Restriction Fragment Length Polymorphism (RFLP) markers (used as chromosomal anchors) were organized into linkage groups using Map Manager software.Results614 AFLP markers formed linkage groups assigned to 10 of 14 chromosomes, and 12 other linkage groups not assigned to known chromosomes. The genetic length of the genome was estimated to be about 1676 centiMorgans (cM). The mean map unit size was estimated to be 13.7 kb/cM. This was slightly less then previous estimates for the human malaria parasite, Plasmodium falciparumConclusionThe P. c. chabaudi genetic linkage map presented here is the most extensive and highly resolved so far available for this species. It can be used in conjunction with the genome databases of P. c chabaudi, P. falciparum and Plasmodium yoelii to identify genes underlying important phenotypes such as drug resistance and strain-specific immunity.
Mini-reviews in Medicinal Chemistry | 2008
Axel Martinelli; Rui Moreira; Pedro Cravo
Drug combination therapies have been devised to delay the development and spread of resistant malaria parasites. However, poor design often leads to ineffective combinations. Here, the properties of various drug combinations are reviewed in relationship to drug resistance and their pharmacokinetic compatibility.
Antimicrobial Agents and Chemotherapy | 2011
Sofia T. Borges; Pedro Cravo; Alison M. Creasey; Richard Fawcett; Katarzyna Modrzynska; Louise Rodrigues; Axel Martinelli; Paul Hunt
ABSTRACT Multidrug-resistant Plasmodium falciparum malaria parasites pose a threat to effective drug control, even to artemisinin-based combination therapies (ACTs). Here we used linkage group selection and Solexa whole-genome resequencing to investigate the genetic basis of resistance to component drugs of ACTs. Using the rodent malaria parasite P. chabaudi, we analyzed the uncloned progeny of a genetic backcross between the mefloquine-, lumefantrine-, and artemisinin-resistant mutant AS-15MF and a genetically distinct sensitive clone, AJ, following drug treatment. Genomewide scans of selection showed that parasites surviving each drug treatment bore a duplication of a segment of chromosome 12 (translocated to chromosome 04) present in AS-15MF. Whole-genome resequencing identified the size of the duplicated segment and its position on chromosome 4. The duplicated fragment extends for ∼393 kbp and contains over 100 genes, including mdr1, encoding the multidrug resistance P-glycoprotein homologue 1. We therefore show that resistance to chemically distinct components of ACTs is mediated by the same genetic mutation, highlighting a possible limitation of these therapies.
BMC Genomics | 2012
Katarzyna Modrzynska; Alison M. Creasey; Laurence Loewe; Timothee Cezard; Sofia T. Borges; Axel Martinelli; Louise Rodrigues; Pedro Cravo; Mark Blaxter; Richard Carter; Paul Hunt
BackgroundDrug resistance in the malaria parasite Plasmodium falciparum severely compromises the treatment and control of malaria. A knowledge of the critical mutations conferring resistance to particular drugs is important in understanding modes of drug action and mechanisms of resistances. They are required to design better therapies and limit drug resistance.A mutation in the gene (pfcrt) encoding a membrane transporter has been identified as a principal determinant of chloroquine resistance in P. falciparum, but we lack a full account of higher level chloroquine resistance. Furthermore, the determinants of resistance in the other major human malaria parasite, P. vivax, are not known. To address these questions, we investigated the genetic basis of chloroquine resistance in an isogenic lineage of rodent malaria parasite P. chabaudi in which high level resistance to chloroquine has been progressively selected under laboratory conditions.ResultsLoci containing the critical genes were mapped by Linkage Group Selection, using a genetic cross between the high-level chloroquine-resistant mutant and a genetically distinct sensitive strain. A novel high-resolution quantitative whole-genome re-sequencing approach was used to reveal three regions of selection on chr11, chr03 and chr02 that appear progressively at increasing drug doses on three chromosomes. Whole-genome sequencing of the chloroquine-resistant parent identified just four point mutations in different genes on these chromosomes. Three mutations are located at the foci of the selection valleys and are therefore predicted to confer different levels of chloroquine resistance. The critical mutation conferring the first level of chloroquine resistance is found in aat1, a putative aminoacid transporter.ConclusionsQuantitative trait loci conferring selectable phenotypes, such as drug resistance, can be mapped directly using progressive genome-wide linkage group selection. Quantitative genome-wide short-read genome resequencing can be used to reveal these signatures of drug selection at high resolution. The identities of three genes (and mutations within them) conferring different levels of chloroquine resistance generate insights regarding the genetic architecture and mechanisms of resistance to chloroquine and other drugs. Importantly, their orthologues may now be evaluated for critical or accessory roles in chloroquine resistance in human malarias P. vivax and P. falciparum.