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1.
Philos Trans R Soc Lond B Biol Sci ; 370(1675)2015 Aug 19.
Article in English | MEDLINE | ID: mdl-26150666

ABSTRACT

Avian malaria has historically played an important role as a model in the study of human malaria, being a stimulus for the development of medical parasitology. Avian malaria has recently come back to the research scene as a unique animal model to understand the ecology and evolution of the disease, both in the field and in the laboratory. Avian malaria is highly prevalent in birds and mosquitoes around the world and is amenable to laboratory experimentation at each stage of the parasite's life cycle. Here, we take stock of 5 years of experimental laboratory research carried out using Plasmodium relictum SGS1, the most prevalent avian malaria lineage in Europe, and its natural vector, the mosquito Culex pipiens. For this purpose, we compile and analyse data obtained in our laboratory in 14 different experiments. We provide statistical relationships between different infection-related parameters, including parasitaemia, gametocytaemia, host morbidity (anaemia) and transmission rates to mosquitoes. This analysis provides a wide-ranging picture of the within-host and between-host parameters that may bear on malaria transmission and epidemiology.


Subject(s)
Malaria, Avian/parasitology , Plasmodium/genetics , Plasmodium/pathogenicity , Animals , Birds , Culex/parasitology , Disease Models, Animal , Evolution, Molecular , Host-Parasite Interactions , Humans , Insect Vectors/parasitology , Malaria, Avian/transmission , Parasitemia/parasitology , Virulence
2.
Evol Appl ; 6(3): 497-509, 2013 Apr.
Article in English | MEDLINE | ID: mdl-23745141

ABSTRACT

Because of their role as vectors of diseases, the evolution of insecticide resistance in mosquitoes has been intensively investigated. Insecticide resistance is associated to a wide range of pleiotropic effects on several key life-history traits of mosquitoes such as longevity and behavior. However, despite its potential implications in pathogen transmission, the effects of insecticide resistance on mosquito immunity have received little, if any, attention. Here, we investigate the impact of insecticide resistance in Culex pipiens, an epidemiologically important vector of a wide array of pathogens. Using both isogenic laboratory strains and field-caught mosquitoes, we investigate the impact of two main insecticide resistance mechanisms (metabolic detoxification and target site modification) on the relative transcription of several genes involved in the immune response to pathogens, at both their constitutive and inducible levels. Our results show a discrepancy between the isogenic laboratory lines and field-collected mosquitoes: While in the isogenic strains, insecticide-resistant mosquitoes show a drastic increase in immune gene expression, no such effect appears in the field. We speculate on the different mechanisms that may underlie this discrepancy and discuss the risks of making inferences on the pleiotropic effects of insecticide-resistant genes by using laboratory-selected insecticide-resistant lines.

3.
PLoS Pathog ; 6(8): e1001000, 2010 Aug 05.
Article in English | MEDLINE | ID: mdl-20700451

ABSTRACT

Many of the most dangerous human diseases are transmitted by insect vectors. After decades of repeated insecticide use, all of these vector species have demonstrated the capacity to evolve resistance to insecticides. Insecticide resistance is generally considered to undermine control of vector-transmitted diseases because it increases the number of vectors that survive the insecticide treatment. Disease control failure, however, need not follow from vector control failure. Here, we review evidence that insecticide resistance may have an impact on the quality of vectors and, specifically, on three key determinants of parasite transmission: vector longevity, competence, and behaviour. We argue that, in some instances, insecticide resistance is likely to result in a decrease in vector longevity, a decrease in infectiousness, or in a change in behaviour, all of which will reduce the vectorial capacity of the insect. If this effect is sufficiently large, the impact of insecticide resistance on disease management may not be as detrimental as previously thought. In other instances, however, insecticide resistance may have the opposite effect, increasing the insect's vectorial capacity, which may lead to a dramatic increase in the transmission of the disease and even to a higher prevalence than in the absence of insecticides. Either way-and there may be no simple generality-the consequence of the evolution of insecticide resistance for disease ecology deserves additional attention.


Subject(s)
Communicable Disease Control/methods , Insect Vectors/drug effects , Insecticide Resistance/drug effects , Insecticides/pharmacology , Animals , Communicable Diseases/transmission , Humans , Insect Vectors/parasitology , Insect Vectors/physiology
4.
Malar J ; 9: 379, 2010 Dec 31.
Article in English | MEDLINE | ID: mdl-21194433

ABSTRACT

BACKGROUND: The control of most vectors of malaria is threatened by the spread of insecticide resistance. One factor that has been hitherto largely overlooked is the potential effects of insecticide resistance on the ability of mosquitoes to transmit malaria: are insecticide-resistant mosquitoes as good vectors of Plasmodium as susceptible ones? The drastic physiological changes that accompany the evolution of insecticide resistance may indeed alter the ability of vectors to transmit diseases, a possibility that, if confirmed, could have major epidemiological consequences. METHODS: Using a novel experimental system consisting of the avian malaria parasite (Plasmodium relictum) and its natural vector (the mosquito Culex pipiens), two of the most common mechanisms of insecticide resistance (esterase overproduction and acetylcholinesterase modification) were investigated for their effect on mosquito infection rate and parasite burden. For this purpose two types of experiments were carried out using (i) insecticide-resistant and susceptible laboratory isogenic lines of Cx. pipiens and (ii) wild Cx. pipiens collected from a population where insecticide resistant and susceptible mosquitoes coexist in sympatry. RESULTS: The isogenic line and wild-caught mosquito experiments were highly consistent in showing no effect of either esterase overproduction or of acetylcholinesterase modification on either the infection rate or on the oocyst burden of mosquitoes. The only determinant of these traits was blood meal size, which was similar across the different insecticide resistant categories in both experiments. CONCLUSIONS: Insecticide resistance was found to have no effect on Plasmodium development within the mosquito. This is the first time this question has been addressed using a natural mosquito-Plasmodium combination, while taking care to standardize the genetic background against which the insecticide resistance genes operate. Infection rate and oocyst burden are but two of the factors that determine the vectorial capacity of mosquitoes. Other key determinants of parasite transmission, such as mosquito longevity and behaviour, or the parasite's incubation time, need to be investigated before concluding on whether insecticide resistance influences the ability of mosquitoes to transmit malaria.


Subject(s)
Culex/drug effects , Culex/parasitology , Disease Vectors , Insecticide Resistance , Malaria/transmission , Plasmodium/isolation & purification , Acetylcholinesterase/metabolism , Animals , Female , Humans , Insect Proteins/metabolism , Oocysts
5.
Mol Cell Neurosci ; 32(4): 315-23, 2006 Aug.
Article in English | MEDLINE | ID: mdl-16806967

ABSTRACT

The mechanisms of prion-induced neurological dysfunction observed in prion diseases are poorly understood. Transgenic mice expressing a truncated form of the prion protein (23-230 PrP) acquire cerebellar degeneration (Ma and Lindquist, Science, 2002). To decipher the mechanisms of neurodegeneration induced by 23-230 PrP, we established inducible cell lines expressing this truncated form of PrP. We found that 23-230 PrP, expected to be cytosolic, accumulated mostly in the nucleus of the cells and was not cytotoxic. Nuclear localization of this mutant form of PrP is independent of its predicted nuclear localization signals. In contrast to what we previously described for PrPSc, nuclear accumulation of 23-230 PrP does not require a functional microtubule network. We observed that 23-230 PrP interacts with chromatin in vivo, as already described for recombinant PrP and for PrPSc. Our data demonstrate that the 23-230 PrP model does not reflect the situation of a cytosolic PrP but could represent a very useful tool to understand the consequences of the accumulation of the prion protein in the nucleus.


Subject(s)
Cell Nucleus/metabolism , Neurons/metabolism , Nuclear Localization Signals/metabolism , Prions/metabolism , Active Transport, Cell Nucleus/drug effects , Animals , Anti-Bacterial Agents/pharmacology , Blotting, Western/methods , Cell Nucleus/drug effects , Cell Survival/physiology , Cells, Cultured , Colchicine/pharmacology , Doxycycline/pharmacology , Embryo, Mammalian , Gene Expression/drug effects , Gene Expression/physiology , Hippocampus/cytology , Mice , Mice, Knockout , Microtubule-Associated Proteins/metabolism , Neuroblastoma , Neurons/drug effects , Peptide Fragments/genetics , Peptide Fragments/metabolism , Prions/genetics , Transduction, Genetic/methods
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