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Dive into the research topics where Andrew P. Waters is active.

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Featured researches published by Andrew P. Waters.


Nature | 2002

Genome sequence and comparative analysis of the model rodent malaria parasite Plasmodium yoelii yoelii

Jane M. Carlton; Samuel V. Angiuoli; Bernard B. Suh; Taco W. A. Kooij; Mihaela Pertea; Joana C. Silva; Maria D. Ermolaeva; Jonathan E. Allen; Jeremy D. Selengut; Hean L. Koo; Jeremy Peterson; Mihai Pop; Daniel S. Kosack; Martin Shumway; Shelby Bidwell; Shamira Shallom; Susan Van Aken; Steven Riedmuller; Tamara Feldblyum; Jennifer Cho; John Quackenbush; Martha Sedegah; Azadeh Shoaibi; Leda M. Cummings; Laurence Florens; John R. Yates; J. Dale Raine; Robert E. Sinden; Michael Harris; Deirdre Cunningham

Species of malaria parasite that infect rodents have long been used as models for malaria disease research. Here we report the whole-genome shotgun sequence of one species, Plasmodium yoelii yoelii, and comparative studies with the genome of the human malaria parasite Plasmodium falciparum clone 3D7. A synteny map of 2,212 P. y. yoelii contiguous DNA sequences (contigs) aligned to 14 P. falciparum chromosomes reveals marked conservation of gene synteny within the body of each chromosome. Of about 5,300 P. falciparum genes, more than 3,300 P. y. yoelii orthologues of predominantly metabolic function were identified. Over 800 copies of a variant antigen gene located in subtelomeric regions were found. This is the first genome sequence of a model eukaryotic parasite, and it provides insight into the use of such systems in the modelling of Plasmodium biology and disease.


Nature | 2002

Analysis of the Plasmodium falciparum proteome by high-accuracy mass spectrometry

Edwin Lasonder; Yasushi Ishihama; Jens S. Andersen; Adriaan M. W. Vermunt; Arnab Pain; Robert W. Sauerwein; Wijnand Eling; Neil Hall; Andrew P. Waters; Hendrik G. Stunnenberg; Matthias Mann

The annotated genomes of organisms define a ‘blueprint’ of their possible gene products. Post-genome analyses attempt to confirm and modify the annotation and impose a sense of the spatial, temporal and developmental usage of genetic information by the organism. Here we describe a large-scale, high-accuracy (average deviation less than 0.02 Da at 1,000 Da) mass spectrometric proteome analysis of selected stages of the human malaria parasite Plasmodium falciparum. The analysis revealed 1,289 proteins of which 714 proteins were identified in asexual blood stages, 931 in gametocytes and 645 in gametes. The last two groups provide insights into the biology of the sexual stages of the parasite, and include conserved, stage-specific, secreted and membrane-associated proteins. A subset of these proteins contain domains that indicate a role in cell–cell interactions, and therefore can be evaluated as potential components of a malaria vaccine formulation. We also report a set of peptides with significant matches in the parasite genome but not in the protein set predicted by computational methods.


Cell | 2004

Complement-Like Protein TEP1 Is a Determinant of Vectorial Capacity in the Malaria Vector Anopheles gambiae

Stéphanie Blandin; Shin-Hong Shiao; Luis F. Moita; Chris J. Janse; Andrew P. Waters; Fotis C. Kafatos; Elena A. Levashina

Anopheles mosquitoes are major vectors of human malaria in Africa. Large variation exists in the ability of mosquitoes to serve as vectors and to transmit malaria parasites, but the molecular mechanisms that determine vectorial capacity remain poorly understood. We report that the hemocyte-specific complement-like protein TEP1 from the mosquito Anopheles gambiae binds to and mediates killing of midgut stages of the rodent malaria parasite Plasmodium berghei. The dsRNA knockdown of TEP1 in adults completely abolishes melanotic refractoriness in a genetically selected refractory strain. Moreover, in susceptible mosquitoes this knockdown increases the number of developing parasites. Our results suggest that the TEP1-dependent parasite killing is followed by a TEP1-independent clearance of dead parasites by lysis and/or melanization. Further elucidation of the molecular mechanisms of TEP1-mediated parasite killing will be of great importance for our understanding of the principles of vectorial capacity in insects.


Nature Protocols | 2006

High-efficiency transfection and drug selection of genetically transformed blood stages of the rodent malaria parasite Plasmodium berghei

Chris J. Janse; Jai Ramesar; Andrew P. Waters

This protocol describes a method of genetic transformation for the rodent malaria parasite Plasmodium berghei with a high transfection efficiency of 10−3–10−4. It provides methods for: (i) in vitro cultivation and purification of the schizont stage;(ii) transfection of DNA constructs containing drug-selectable markers into schizonts using the nonviral Nucleofector technology; and (iii) injection of transfected parasites into mice and subsequent selection of mutants by drug treatment in vivo. Drug selection is described for two (antimalarial) drugs, pyrimethamine and WR92210. The drug-selectable markers currently in use are the pyrimethamine-resistant dihydrofolate reductase (dhfr) gene of Plasmodium or Toxoplasma gondii and the DHFR gene of humans that confer resistance to pyrimethamine and WR92210, respectively. This protocol enables the generation of transformed parasites within 10–15 d. Genetic modification of P. berghei is widely used to investigate gene function in Plasmodium, and this protocol for high-efficiency transformation will enable the application of large-scale functional genomics approaches.


Cell | 2005

Proteome Analysis of Separated Male and Female Gametocytes Reveals Novel Sex-Specific Plasmodium Biology

Shahid M. Khan; Blandine Franke-Fayard; Gunnar R. Mair; Edwin Lasonder; Chris J. Janse; Matthias Mann; Andrew P. Waters

Gametocytes, the precursor cells of malaria-parasite gametes, circulate in the blood and are responsible for transmission from host to mosquito vector. The individual proteomes of male and female gametocytes were analyzed using mass spectrometry, following separation by flow sorting of transgenic parasites expressing green fluorescent protein, in a sex-specific manner. Promoter tagging in transgenic parasites confirmed the designation of stage and sex specificity of the proteins. The male proteome contained 36% (236 of 650) male-specific and the female proteome 19% (101 of 541) female-specific proteins, but they share only 69 proteins, emphasizing the diverged features of the sexes. Of all the malaria life-cycle stages analyzed, the male gametocyte has the most distinct proteome, containing many proteins involved in flagellar-based motility and rapid genome replication. By identification of gender-specific protein kinases and phosphatases and using targeted gene disruption of two kinases, new sex-specific regulatory pathways were defined.


Cell | 2001

A Central Role for P48/45 in Malaria Parasite Male Gamete Fertility

Melissa R. van Dijk; Chris J. Janse; Joanne Thompson; Andrew P. Waters; Joanna A. M. Braks; Huub J. Dodemont; Henk Stunnenberg; Geert-Jan van Gemert; Robert W. Sauerwein; Wijnand Eling

Fertilization and zygote development are obligate features of the malaria parasite life cycle and occur during parasite transmission to mosquitoes. The surface protein PFS48/45 is expressed by male and female gametes of Plasmodium falciparum and PFS48/45 antibodies prevent zygote development and transmission. Here, gene disruption was used to show that Pfs48/45 and the ortholog Pbs48/45 from a rodent malaria parasite P. berghei play a conserved and important role in fertilization. p48/45- parasites had a reduced capacity to produce oocysts in mosquitoes due to greatly reduced zygote formation. Unexpectedly, only male gamete fertility of p48/45- parasites was affected, failing to penetrate otherwise fertile female gametes. P48/45 is shown to be a surface protein of malaria parasites with a demonstrable role in fertilization.


Cell Host & Microbe | 2008

The Fatty Acid Biosynthesis Enzyme FabI Plays a Key Role in the Development of Liver-Stage Malarial Parasites

Min Yu; T. R. Santha Kumar; Louis J. Nkrumah; Alida Coppi; Silke Retzlaff; Celeste D. Li; Brendan J. Kelly; Pedro A. Moura; Viswanathan Lakshmanan; Joel S. Freundlich; Juan Carlos Valderramos; Catherine Vilchèze; Mark J. Siedner; Jennifer H. Tsai; Brie Falkard; Amar Bir Singh Sidhu; Lisa A. Purcell; Paul Gratraud; Laurent Kremer; Andrew P. Waters; Guy Alan Schiehser; David P. Jacobus; Chris J. Janse; Arba L. Ager; William R. Jacobs; James C. Sacchettini; Volker Heussler; Photini Sinnis; David A. Fidock

The fatty acid synthesis type II pathway has received considerable interest as a candidate therapeutic target in Plasmodium falciparum asexual blood-stage infections. This apicoplast-resident pathway, distinct from the mammalian type I process, includes FabI. Here, we report synthetic chemistry and transfection studies concluding that Plasmodium FabI is not the target of the antimalarial activity of triclosan, an inhibitor of bacterial FabI. Disruption of fabI in P. falciparum or the rodent parasite P. berghei does not impede blood-stage growth. In contrast, mosquito-derived, FabI-deficient P. berghei sporozoites are markedly less infective for mice and typically fail to complete liver-stage development in vitro. This defect is characterized by an inability to form intrahepatic merosomes that normally initiate blood-stage infections. These data illuminate key differences between liver- and blood-stage parasites in their requirements for host versus de novo synthesized fatty acids, and create new prospects for stage-specific antimalarial interventions.


Parasite Immunology | 1988

Vaccination trials in rhesus monkeys with a minor, invariant, Plasmodium knowlesi 66 kD merozoite antigen

Judith A. Deans; A.M. Knight; W.C. Jean; Andrew P. Waters; S. Cohen; G. H. Mitchell

Summary A minor Plasmodium knowlesi 66 kD antigen, which plays an essential role in merozoite invasion, has been shown to be stable in distinct variants and strains of the parasite, and in the face of a specific immune response from the host. Parasites were unable to produce novel molecule(s) to replace it functionally, even in the presence of specific immune pressure. Rhesus monkeys immunized with the purified 66 kD antigen, with saponin as adjuvant, produced antibody which inhibited merozoite invasion of red cells in vitro. Four out of six immunized rhesus monkeys demonstrated clinically effective immunity when challenged at a time of known or presumed high inhibitory antibody titre. When immunization failed to protect, it was ascribed to insufficient levels of specific antibody attributable either to a suboptimal dose of antigen or the use of an inadequate adjuvant.


PLOS ONE | 2009

Visualisation and quantitative analysis of the rodent malaria liver stage by real time imaging.

Ivo Ploemen; Miguel Prudêncio; Bruno Douradinha; Jai Ramesar; Jannik Fonager; Geert-Jan van Gemert; Adrian J. F. Luty; Cornelus C. Hermsen; Robert W. Sauerwein; Fernanda G. Baptista; Maria M. Mota; Andrew P. Waters; Ivo Que; Clemens W.G.M. Löwik; Shahid M. Khan; Chris J. Janse; Blandine Franke-Fayard

The quantitative analysis of Plasmodium development in the liver in laboratory animals in cultured cells is hampered by low parasite infection rates and the complicated methods required to monitor intracellular development. As a consequence, this important phase of the parasites life cycle has been poorly studied compared to blood stages, for example in screening anti-malarial drugs. Here we report the use of a transgenic P. berghei parasite, PbGFP-Luccon, expressing the bioluminescent reporter protein luciferase to visualize and quantify parasite development in liver cells both in culture and in live mice using real-time luminescence imaging. The reporter-parasite based quantification in cultured hepatocytes by real-time imaging or using a microplate reader correlates very well with established quantitative RT-PCR methods. For the first time the liver stage of Plasmodium is visualized in whole bodies of live mice and we were able to discriminate as few as 1–5 infected hepatocytes per liver in mice using 2D-imaging and to identify individual infected hepatocytes by 3D-imaging. The analysis of liver infections by whole body imaging shows a good correlation with quantitative RT-PCR analysis of extracted livers. The luminescence-based analysis of the effects of various drugs on in vitro hepatocyte infection shows that this method can effectively be used for in vitro screening of compounds targeting Plasmodium liver stages. Furthermore, by analysing the effect of primaquine and tafenoquine in vivo we demonstrate the applicability of real time imaging to assess parasite drug sensitivity in the liver. The simplicity and speed of quantitative analysis of liver-stage development by real-time imaging compared to the PCR methodologies, as well as the possibility to analyse liver development in live mice without surgery, opens up new possibilities for research on Plasmodium liver infections and for validating the effect of drugs and vaccines on the liver stage of Plasmodium.


PLOS Pathogens | 2008

Proteomic Profiling of Plasmodium Sporozoite Maturation Identifies New Proteins Essential for Parasite Development and Infectivity

Edwin Lasonder; Chris J. Janse; Geert-Jan van Gemert; Gunnar R. Mair; Adriaan M. W. Vermunt; Bruno Douradinha; Vera van Noort; Martijn A. Huynen; Adrian J. F. Luty; Hans Kroeze; Shahid M. Khan; Robert W. Sauerwein; Andrew P. Waters; Matthias Mann; Hendrik G. Stunnenberg

Plasmodium falciparum sporozoites that develop and mature inside an Anopheles mosquito initiate a malaria infection in humans. Here we report the first proteomic comparison of different parasite stages from the mosquito—early and late oocysts containing midgut sporozoites, and the mature, infectious salivary gland sporozoites. Despite the morphological similarity between midgut and salivary gland sporozoites, their proteomes are markedly different, in agreement with their increase in hepatocyte infectivity. The different sporozoite proteomes contain a large number of stage specific proteins whose annotation suggest an involvement in sporozoite maturation, motility, infection of the human host and associated metabolic adjustments. Analyses of proteins identified in the P. falciparum sporozoite proteomes by orthologous gene disruption in the rodent malaria parasite, P. berghei, revealed three previously uncharacterized Plasmodium proteins that appear to be essential for sporozoite development at distinct points of maturation in the mosquito. This study sheds light on the development and maturation of the malaria parasite in an Anopheles mosquito and also identifies proteins that may be essential for sporozoite infectivity to humans.

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Chris J. Janse

Leiden University Medical Center

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Jai Ramesar

Leiden University Medical Center

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Blandine Franke-Fayard

Leiden University Medical Center

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Thomas F. McCutchan

National Institutes of Health

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Shahid M. Khan

Leiden University Medical Center

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Alan W. Thomas

Biomedical Primate Research Centre

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Maria M. Mota

Instituto de Medicina Molecular

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