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1.
Cell ; 185(17): 3079-3081, 2022 08 18.
Article in English | MEDLINE | ID: mdl-35985284

ABSTRACT

Mosquitoes are strongly attracted to humans, and their bites not only cause intense itch but can beget severe diseases. In this issue of Cell, Herre et al. reveal that non-canonical olfactory circuit organization and coding likely endow mosquitoes with a robust ability to locate human hosts.


Subject(s)
Aedes , Anopheles , Animals , Humans , Odorants , Pheromones
2.
Cell ; 185(22): 4099-4116.e13, 2022 10 27.
Article in English | MEDLINE | ID: mdl-36261039

ABSTRACT

Some people are more attractive to mosquitoes than others, but the mechanistic basis of this phenomenon is poorly understood. We tested mosquito attraction to human skin odor and identified people who are exceptionally attractive or unattractive to mosquitoes. These differences were stable over several years. Chemical analysis revealed that highly attractive people produce significantly more carboxylic acids in their skin emanations. Mutant mosquitoes lacking the chemosensory co-receptors Ir8a, Ir25a, or Ir76b were severely impaired in attraction to human scent, but retained the ability to differentiate highly and weakly attractive people. The link between elevated carboxylic acids in "mosquito-magnet" human skin odor and phenotypes of genetic mutations in carboxylic acid receptors suggests that such compounds contribute to differential mosquito attraction. Understanding why some humans are more attractive than others provides insights into what skin odorants are most important to the mosquito and could inform the development of more effective repellents.


Subject(s)
Aedes , Anopheles , Insect Repellents , Animals , Humans , Carboxylic Acids/pharmacology , Odorants/analysis , Insect Repellents/pharmacology , Insect Repellents/analysis
3.
Cell ; 177(2): 315-325.e14, 2019 04 04.
Article in English | MEDLINE | ID: mdl-30929905

ABSTRACT

Transmission of malaria parasites occurs when a female Anopheles mosquito feeds on an infected host to acquire nutrients for egg development. How parasites are affected by oogenetic processes, principally orchestrated by the steroid hormone 20-hydroxyecdysone (20E), remains largely unknown. Here we show that Plasmodium falciparum development is intimately but not competitively linked to processes shaping Anopheles gambiae reproduction. We unveil a 20E-mediated positive correlation between egg and oocyst numbers; impairing oogenesis by multiple 20E manipulations decreases parasite intensities. These manipulations, however, accelerate Plasmodium growth rates, allowing sporozoites to become infectious sooner. Parasites exploit mosquito lipids for faster growth, but they do so without further affecting egg development. These results suggest that P. falciparum has adopted a non-competitive evolutionary strategy of resource exploitation to optimize transmission while minimizing fitness costs to its mosquito vector. Our findings have profound implications for currently proposed control strategies aimed at suppressing mosquito populations.


Subject(s)
Ecdysterone/metabolism , Host-Parasite Interactions/physiology , Malaria, Falciparum/parasitology , Animals , Anopheles/parasitology , Culicidae , Ecdysterone/physiology , Female , HEK293 Cells , Humans , Insect Vectors , Malaria/parasitology , Mice , Mosquito Vectors , NIH 3T3 Cells , Oogenesis/physiology , Plasmodium/metabolism , Plasmodium falciparum , Sporozoites , Steroids/metabolism
4.
Cell ; 159(6): 1277-89, 2014 Dec 04.
Article in English | MEDLINE | ID: mdl-25480293

ABSTRACT

Glycosylation processes are under high natural selection pressure, presumably because these can modulate resistance to infection. Here, we asked whether inactivation of the UDP-galactose:ß-galactoside-α1-3-galactosyltransferase (α1,3GT) gene, which ablated the expression of the Galα1-3Galß1-4GlcNAc-R (α-gal) glycan and allowed for the production of anti-α-gal antibodies (Abs) in humans, confers protection against Plasmodium spp. infection, the causative agent of malaria and a major driving force in human evolution. We demonstrate that both Plasmodium spp. and the human gut pathobiont E. coli O86:B7 express α-gal and that anti-α-gal Abs are associated with protection against malaria transmission in humans as well as in α1,3GT-deficient mice, which produce protective anti-α-gal Abs when colonized by E. coli O86:B7. Anti-α-gal Abs target Plasmodium sporozoites for complement-mediated cytotoxicity in the skin, immediately after inoculation by Anopheles mosquitoes. Vaccination against α-gal confers sterile protection against malaria in mice, suggesting that a similar approach may reduce malaria transmission in humans.


Subject(s)
Escherichia coli/physiology , Immunoglobulin M/immunology , Malaria, Falciparum/immunology , Malaria, Falciparum/transmission , Plasmodium/physiology , Polysaccharides/immunology , Adult , Animals , Anopheles/parasitology , Antibodies, Bacterial/blood , Antibodies, Bacterial/immunology , Antibodies, Protozoan/blood , Antibodies, Protozoan/immunology , Autoantigens/immunology , Cell Line, Tumor , Child , Escherichia coli/classification , Escherichia coli/immunology , Female , Galactosyltransferases/genetics , Galactosyltransferases/metabolism , Gastrointestinal Tract/microbiology , Germ-Free Life , Humans , Immunoglobulin M/blood , Malaria, Falciparum/microbiology , Malaria, Falciparum/parasitology , Mice , Plasmodium/classification , Plasmodium/growth & development , Plasmodium/immunology , Plasmodium falciparum/immunology , Plasmodium falciparum/physiology , Sporozoites/immunology , Toll-Like Receptor 9/agonists
5.
Nature ; 623(7985): 175-182, 2023 Nov.
Article in English | MEDLINE | ID: mdl-37769784

ABSTRACT

The Anopheles mosquito is one of thousands of species in which sex differences play a central part in their biology, as only females need a blood meal to produce eggs. Sex differentiation is regulated by sex chromosomes, but their presence creates a dosage imbalance between males (XY) and females (XX). Dosage compensation (DC) can re-equilibrate the expression of sex chromosomal genes. However, because DC mechanisms have only been fully characterized in a few model organisms, key questions about its evolutionary diversity and functional necessity remain unresolved1. Here we report the discovery of a previously uncharacterized gene (sex chromosome activation (SOA)) as a master regulator of DC in the malaria mosquito Anopheles gambiae. Sex-specific alternative splicing prevents functional SOA protein expression in females. The male isoform encodes a DNA-binding protein that binds the promoters of active X chromosomal genes. Expressing male SOA is sufficient to induce DC in female cells. Male mosquitoes lacking SOA or female mosquitoes ectopically expressing the male isoform exhibit X chromosome misregulation, which is compatible with viability but causes developmental delay. Thus, our molecular analyses of a DC master regulator in a non-model organism elucidates the evolutionary steps that lead to the establishment of a chromosome-specific fine-tuning mechanism.


Subject(s)
Alternative Splicing , Anopheles , Dosage Compensation, Genetic , Insect Proteins , Sex Characteristics , Sex Differentiation , X Chromosome , Animals , Female , Male , Anopheles/genetics , Anopheles/metabolism , Protein Isoforms/genetics , Protein Isoforms/metabolism , Sex Differentiation/genetics , X Chromosome/genetics , Insect Proteins/genetics , Insect Proteins/metabolism , DNA-Binding Proteins/genetics , DNA-Binding Proteins/metabolism
6.
Cell ; 155(6): 1365-79, 2013 Dec 05.
Article in English | MEDLINE | ID: mdl-24315103

ABSTRACT

Female mosquitoes that transmit deadly diseases locate human hosts by detecting exhaled CO2 and skin odor. The identities of olfactory neurons and receptors required for attraction to skin odor remain a mystery. Here, we show that the CO2-sensitive olfactory neuron is also a sensitive detector of human skin odorants in both Aedes aegypti and Anopheles gambiae. We demonstrate that activity of this neuron is important for attraction to skin odor, establishing it as a key target for intervention. We screen ~0.5 million compounds in silico and identify several CO2 receptor ligands, including an antagonist that reduces attraction to skin and an agonist that lures mosquitoes to traps as effectively as CO2. Analysis of the CO2 receptor ligand space provides a foundation for understanding mosquito host-seeking behavior and identifies odors that are potentially safe, pleasant, and affordable for use in a new generation of mosquito control strategies worldwide.


Subject(s)
Aedes/physiology , Anopheles/physiology , Carbon Dioxide/metabolism , Insect Proteins/metabolism , Odorants , Receptors, Cell Surface/metabolism , Animals , Female , Humans , Insect Proteins/genetics , Mosquito Control , Neurons/physiology , Receptors, Cell Surface/genetics , Skin/metabolism
7.
Nature ; 608(7921): 93-97, 2022 08.
Article in English | MEDLINE | ID: mdl-35794471

ABSTRACT

Insects, unlike vertebrates, are widely believed to lack male-biased sex steroid hormones1. In the malaria mosquito Anopheles gambiae, the ecdysteroid 20-hydroxyecdysone (20E) appears to have evolved to both control egg development when synthesized by females2 and to induce mating refractoriness when sexually transferred by males3. Because egg development and mating are essential reproductive traits, understanding how Anopheles females integrate these hormonal signals can spur the design of new malaria control programs. Here we reveal that these reproductive functions are regulated by distinct sex steroids through a sophisticated network of ecdysteroid-activating/inactivating enzymes. We identify a male-specific oxidized ecdysteroid, 3-dehydro-20E (3D20E), which safeguards paternity by turning off female sexual receptivity following its sexual transfer and activation by dephosphorylation. Notably, 3D20E transfer also induces expression of a reproductive gene that preserves egg development during Plasmodium infection, ensuring fitness of infected females. Female-derived 20E does not trigger sexual refractoriness but instead licenses oviposition in mated individuals once a 20E-inhibiting kinase is repressed. Identifying this male-specific insect steroid hormone and its roles in regulating female sexual receptivity, fertility and interactions with Plasmodium parasites suggests the possibility for reducing the reproductive success of malaria-transmitting mosquitoes.


Subject(s)
Anopheles , Ecdysteroids , Malaria , Sexual Behavior, Animal , Animals , Anopheles/enzymology , Anopheles/parasitology , Anopheles/physiology , Ecdysteroids/biosynthesis , Ecdysteroids/metabolism , Female , Fertility , Humans , Malaria/parasitology , Malaria/prevention & control , Malaria/transmission , Male , Mosquito Vectors/parasitology , Oviposition , Phosphorylation , Plasmodium
8.
Annu Rev Microbiol ; 76: 113-134, 2022 09 08.
Article in English | MEDLINE | ID: mdl-35609946

ABSTRACT

The malaria parasite life cycle alternates between two hosts: a vertebrate and the female Anopheles mosquito vector. Cell division, proliferation, and invasion are essential for parasite development, transmission, and survival. Most research has focused on Plasmodium development in the vertebrate, which causes disease; however, knowledge of malaria parasite development in the mosquito (the sexual and transmission stages) is now rapidly accumulating, gathered largely through investigation of the rodent malaria model, with Plasmodium berghei. In this review, we discuss the seminal genome-wide screens that have uncovered key regulators of cell proliferation, invasion, and transmission during Plasmodium sexual development. Our focus is on the roles of transcription factors, reversible protein phosphorylation, and molecular motors. We also emphasize the still-unanswered important questions around key pathways in cell division during the vector transmission stages and how they may be targeted in future studies.


Subject(s)
Anopheles , Malaria , Parasites , Animals , Anopheles/parasitology , Female , Malaria/parasitology , Mosquito Vectors , Plasmodium berghei/genetics
9.
Nat Rev Genet ; 22(8): 502-517, 2021 08.
Article in English | MEDLINE | ID: mdl-33833443

ABSTRACT

Almost 20 years have passed since the first reference genome assemblies were published for Plasmodium falciparum, the deadliest malaria parasite, and Anopheles gambiae, the most important mosquito vector of malaria in sub-Saharan Africa. Reference genomes now exist for all human malaria parasites and nearly half of the ~40 important vectors around the world. As a foundation for genetic diversity studies, these reference genomes have helped advance our understanding of basic disease biology and drug and insecticide resistance, and have informed vaccine development efforts. Population genomic data are increasingly being used to guide our understanding of malaria epidemiology, for example by assessing connectivity between populations and the efficacy of parasite and vector interventions. The potential value of these applications to malaria control strategies, together with the increasing diversity of genomic data types and contexts in which data are being generated, raise both opportunities and challenges in the field. This Review discusses advances in malaria genomics and explores how population genomic data could be harnessed to further support global disease control efforts.


Subject(s)
Malaria/parasitology , Metagenomics/trends , Mosquito Vectors/genetics , Plasmodium falciparum/genetics , Animals , Anopheles/genetics , Antimalarials/pharmacology , Drug Resistance , Genes, Insect , Genes, Protozoan , Humans , Malaria/prevention & control , Malaria Vaccines , Plasmodium falciparum/drug effects
10.
Proc Natl Acad Sci U S A ; 121(27): e2312456121, 2024 Jul 02.
Article in English | MEDLINE | ID: mdl-38917000

ABSTRACT

Controlling the principal African malaria vector, the mosquito Anopheles gambiae, is considered essential to curtail malaria transmission. However, existing vector control technologies rely on insecticides, which are becoming increasingly ineffective. Sterile insect technique (SIT) is a powerful suppression approach that has successfully eradicated a number of insect pests, yet the A. gambiae toolkit lacks the requisite technologies for its implementation. SIT relies on iterative mass releases of nonbiting, nondriving, sterile males which seek out and mate with monandrous wild females. Once mated, females are permanently sterilized due to mating-induced refractoriness, which results in population suppression of the subsequent generation. However, sterilization by traditional methods renders males unfit, making the creation of precise genetic sterilization methods imperative. Here, we introduce a vector control technology termed precision-guided sterile insect technique (pgSIT), in A. gambiae for inducible, programmed male sterilization and female elimination for wide-scale use in SIT campaigns. Using a binary CRISPR strategy, we cross separate engineered Cas9 and gRNA strains to disrupt male-fertility and female-essential genes, yielding >99.5% male sterility and >99.9% female lethality in hybrid progeny. We demonstrate that these genetically sterilized males have good longevity, are able to induce sustained population suppression in cage trials, and are predicted to eliminate wild A. gambiae populations using mathematical models, making them ideal candidates for release. This work provides a valuable addition to the malaria genetic biocontrol toolkit, enabling scalable SIT-like confinable, species-specific, and safe suppression in the species.


Subject(s)
Anopheles , Malaria , Mosquito Control , Mosquito Vectors , Animals , Male , Anopheles/genetics , Anopheles/physiology , Mosquito Vectors/genetics , Mosquito Vectors/parasitology , Malaria/transmission , Malaria/prevention & control , Female , Mosquito Control/methods , Infertility, Male/genetics , CRISPR-Cas Systems
11.
Proc Natl Acad Sci U S A ; 121(15): e2310859121, 2024 Apr 09.
Article in English | MEDLINE | ID: mdl-38527214

ABSTRACT

Malaria is a disease of global significance. Ongoing changes to the earth's climate, antimalarial resistance, insecticide resistance, and socioeconomic decline test the resilience of malaria prevention programs. Museum insect specimens present an untapped resource for studying vector-borne pathogens, spurring the question: Do historical mosquito collections contain Plasmodium DNA, and, if so, can museum specimens be used to reconstruct the historical epidemiology of malaria? In this Perspective, we explore molecular techniques practical to pathogen prospecting, which, more broadly, we define as the science of screening entomological museum specimens for human, animal, or plant pathogens. Historical DNA and pathogen prospecting provide a means of describing the coevolution of human, vector, and parasite, informing the development of insecticides, diagnostics, therapeutics, and vaccines.


Subject(s)
Anopheles , Insecticides , Malaria , Animals , Humans , Museums , Anopheles/genetics , Mosquito Vectors , Malaria/epidemiology , Malaria/prevention & control , Insecticide Resistance , Insecticides/pharmacology , DNA , Mosquito Control
12.
PLoS Genet ; 20(6): e1011303, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38848445

ABSTRACT

Despite efforts to explore the genome of the malaria vector Anopheles gambiae, the Y chromosome of this species remains enigmatic. The large number of repetitive and heterochromatic DNA sequences makes the Y chromosome exceptionally difficult to fully assemble, hampering the progress of gene editing techniques and functional studies for this chromosome. In this study, we made use of a bioinformatic platform to identify Y-specific repetitive DNA sequences that served as a target site for a CRISPR/Cas9 system. The activity of Cas9 in the reproductive organs of males caused damage to Y-bearing sperm without affecting their fertility, leading to a strong female bias in the progeny. Cytological investigation allowed us to identify meiotic defects and investigate sperm selection in this new synthetic sex ratio distorter system. In addition, alternative promoters enable us to target the Y chromosome in specific tissues and developmental stages of male mosquitoes, enabling studies that shed light on the role of this chromosome in male gametogenesis. This work paves the way for further insight into the poorly characterised Y chromosome of Anopheles gambiae. Moreover, the sex distorter strain we have generated promises to be a valuable tool for the advancement of studies in the field of developmental biology, with the potential to support the progress of genetic strategies aimed at controlling malaria mosquitoes and other pest species.


Subject(s)
Anopheles , CRISPR-Cas Systems , Sex Ratio , Y Chromosome , Animals , Anopheles/genetics , Male , Female , Y Chromosome/genetics , Mosquito Vectors/genetics , Meiosis/genetics , Spermatozoa/metabolism , Gene Editing/methods , Malaria/transmission , Malaria/genetics
13.
PLoS Genet ; 20(7): e1011344, 2024 Jul.
Article in English | MEDLINE | ID: mdl-39074161

ABSTRACT

Deciphering the evolutionary forces controlling insecticide resistance in malaria vectors remains a prerequisite to designing molecular tools to detect and assess resistance impact on control tools. Here, we demonstrate that a 4.3kb transposon-containing structural variation is associated with pyrethroid resistance in central/eastern African populations of the malaria vector Anopheles funestus. In this study, we analysed Pooled template sequencing data and direct sequencing to identify an insertion of 4.3kb containing a putative retro-transposon in the intergenic region of two P450s CYP6P5-CYP6P9b in mosquitoes of the malaria vector Anopheles funestus from Uganda. We then designed a PCR assay to track its spread temporally and regionally and decipher its role in insecticide resistance. The insertion originates in or near Uganda in East Africa, where it is fixed and has spread to high frequencies in the Central African nation of Cameroon but is still at low frequency in West Africa and absent in Southern Africa. A marked and rapid selection was observed with the 4.3kb-SV frequency increasing from 3% in 2014 to 98% in 2021 in Cameroon. A strong association was established between this SV and pyrethroid resistance in field populations and is reducing pyrethroid-only nets' efficacy. Genetic crosses and qRT-PCR revealed that this SV enhances the expression of CYP6P9a/b but not CYP6P5. Within this structural variant (SV), we identified putative binding sites for transcription factors associated with the regulation of detoxification genes. An inverse correlation was observed between the 4.3kb SV and malaria parasite infection, indicating that mosquitoes lacking the 4.3kb SV were more frequently infected compared to those possessing it. Our findings highlight the underexplored role and rapid spread of SVs in the evolution of insecticide resistance and provide additional tools for molecular surveillance of insecticide resistance.


Subject(s)
Anopheles , Cytochrome P-450 Enzyme System , DNA Transposable Elements , Insecticide Resistance , Insecticides , Malaria , Mosquito Vectors , Pyrethrins , Animals , Anopheles/genetics , Anopheles/parasitology , Anopheles/drug effects , Pyrethrins/pharmacology , Insecticide Resistance/genetics , Mosquito Vectors/genetics , Mosquito Vectors/parasitology , Mosquito Vectors/drug effects , Malaria/transmission , Malaria/parasitology , Malaria/genetics , DNA Transposable Elements/genetics , Cytochrome P-450 Enzyme System/genetics , Insecticides/pharmacology , Uganda , Humans , Cameroon
14.
Proc Natl Acad Sci U S A ; 121(24): e2320898121, 2024 Jun 11.
Article in English | MEDLINE | ID: mdl-38833464

ABSTRACT

The World Health Organization identifies a strong surveillance system for malaria and its mosquito vector as an essential pillar of the malaria elimination agenda. Anopheles salivary antibodies are emerging biomarkers of exposure to mosquito bites that potentially overcome sensitivity and logistical constraints of traditional entomological surveys. Using samples collected by a village health volunteer network in 104 villages in Southeast Myanmar during routine surveillance, the present study employs a Bayesian geostatistical modeling framework, incorporating climatic and environmental variables together with Anopheles salivary antigen serology, to generate spatially continuous predictive maps of Anopheles biting exposure. Our maps quantify fine-scale spatial and temporal heterogeneity in Anopheles salivary antibody seroprevalence (ranging from 9 to 99%) that serves as a proxy of exposure to Anopheles bites and advances current static maps of only Anopheles occurrence. We also developed an innovative framework to perform surveillance of malaria transmission. By incorporating antibodies against the vector and the transmissible form of malaria (sporozoite) in a joint Bayesian geostatistical model, we predict several foci of ongoing transmission. In our study, we demonstrate that antibodies specific for Anopheles salivary and sporozoite antigens are a logistically feasible metric with which to quantify and characterize heterogeneity in exposure to vector bites and malaria transmission. These approaches could readily be scaled up into existing village health volunteer surveillance networks to identify foci of residual malaria transmission, which could be targeted with supplementary interventions to accelerate progress toward elimination.


Subject(s)
Anopheles , Bayes Theorem , Malaria , Mosquito Vectors , Animals , Anopheles/parasitology , Mosquito Vectors/parasitology , Humans , Malaria/transmission , Malaria/epidemiology , Malaria/immunology , Malaria/parasitology , Seroepidemiologic Studies , Insect Bites and Stings/epidemiology , Insect Bites and Stings/immunology , Insect Bites and Stings/parasitology , Sporozoites/immunology
15.
PLoS Genet ; 20(1): e1011145, 2024 Jan.
Article in English | MEDLINE | ID: mdl-38285728

ABSTRACT

Females from many mosquito species feed on blood to acquire nutrients for egg development. The oogenetic cycle has been characterized in the arboviral vector Aedes aegypti, where after a bloodmeal, the lipid transporter lipophorin (Lp) shuttles lipids from the midgut and fat body to the ovaries, and a yolk precursor protein, vitellogenin (Vg), is deposited into the oocyte by receptor-mediated endocytosis. Our understanding of how the roles of these two nutrient transporters are mutually coordinated is however limited in this and other mosquito species. Here, we demonstrate that in the malaria mosquito Anopheles gambiae, Lp and Vg are reciprocally regulated in a timely manner to optimize egg development and ensure fertility. Defective lipid transport via Lp knockdown triggers abortive ovarian follicle development, leading to misregulation of Vg and aberrant yolk granules. Conversely, depletion of Vg causes an upregulation of Lp in the fat body in a manner that appears to be at least partially dependent on target of rapamycin (TOR) signaling, resulting in excess lipid accumulation in the developing follicles. Embryos deposited by Vg-depleted mothers are completely inviable, and are arrested early during development, likely due to severely reduced amino acid levels and protein synthesis. Our findings demonstrate that the mutual regulation of these two nutrient transporters is essential to safeguard fertility by ensuring correct nutrient balance in the developing oocyte, and validate Vg and Lp as two potential candidates for mosquito control.


Subject(s)
Aedes , Anopheles , Malaria , Female , Animals , Anopheles/genetics , Mosquito Vectors/genetics , Vitellogenins/genetics , Vitellogenins/metabolism , Egg Proteins/metabolism , Membrane Transport Proteins/genetics , Membrane Transport Proteins/metabolism , Fertility/genetics , Lipids , Aedes/genetics , Aedes/metabolism
16.
J Cell Sci ; 137(11)2024 Jun 01.
Article in English | MEDLINE | ID: mdl-38832798

ABSTRACT

Plasmodium sporozoites are the infective forms of the malaria parasite in the mosquito and vertebrate host. Gliding motility allows sporozoites to migrate and invade mosquito salivary glands and mammalian hosts. Motility and invasion are powered by an actin-myosin motor complex linked to the glideosome, which contains glideosome-associated proteins (GAPs), MyoA and the myosin A tail-interacting protein (MTIP). However, the role of several proteins involved in gliding motility remains unknown. We identified that the S14 gene is upregulated in sporozoite from transcriptome data of Plasmodium yoelii and further confirmed its transcription in P. berghei sporozoites using real-time PCR. C-terminal 3×HA-mCherry tagging revealed that S14 is expressed and localized on the inner membrane complex of the sporozoites. We disrupted S14 in P. berghei and demonstrated that it is essential for sporozoite gliding motility, and salivary gland and hepatocyte invasion. The gliding and invasion-deficient S14 knockout sporozoites showed normal expression and organization of inner membrane complex and surface proteins. Taken together, our data show that S14 plays a role in the function of the glideosome and is essential for malaria transmission.


Subject(s)
Malaria , Plasmodium berghei , Protozoan Proteins , Sporozoites , Sporozoites/metabolism , Plasmodium berghei/metabolism , Plasmodium berghei/genetics , Protozoan Proteins/metabolism , Protozoan Proteins/genetics , Animals , Mice , Malaria/parasitology , Salivary Glands/parasitology , Salivary Glands/metabolism , Anopheles/parasitology
17.
PLoS Pathog ; 20(1): e1011935, 2024 Jan.
Article in English | MEDLINE | ID: mdl-38198491

ABSTRACT

The body temperature of mosquitoes, like most insects, is dictated by the environmental temperature. Climate change is increasing the body temperature of insects and thereby altering physiological processes such as immune proficiency. Aging also alters insect physiology, resulting in the weakening of the immune system in a process called senescence. Although both temperature and aging independently affect the immune system, it is unknown whether temperature alters the rate of immune senescence. Here, we evaluated the independent and combined effects of temperature (27°C, 30°C and 32°C) and aging (1, 5, 10 and 15 days old) on the melanization immune response of the adult female mosquito, Anopheles gambiae. Using a spectrophotometric assay that measures phenoloxidase activity (a rate limiting enzyme) in hemolymph, and therefore, the melanization potential of the mosquito, we discovered that the strength of melanization decreases with higher temperature, aging, and infection. Moreover, when the temperature is higher, the aging-dependent decline in melanization begins at a younger age. Using an optical assay that measures melanin deposition on the abdominal wall and in the periostial regions of the heart, we found that melanin is deposited after infection, that this deposition decreases with aging, and that this aging-dependent decline is accelerated by higher temperature. This study demonstrates that higher temperature accelerates immune senescence in mosquitoes, with higher temperature uncoupling physiological age from chronological age. These findings highlight the importance of investigating the consequences of climate change on how disease transmission by mosquitoes is affected by aging.


Subject(s)
Anopheles , Melanins , Animals , Female , Temperature , Immunity , Hot Temperature
18.
PLoS Pathog ; 20(2): e1012008, 2024 Feb.
Article in English | MEDLINE | ID: mdl-38354186

ABSTRACT

Leucine-rich repeat (LRR) proteins are commonly involved in innate immunity of animals and plants, including for pattern recognition of pathogen-derived elicitors. The Anopheles secreted LRR proteins APL1C and LRIM1 are required for malaria ookinete killing in conjunction with the complement-like TEP1 protein. However, the mechanism of parasite immune recognition by the mosquito remains unclear, although it is known that TEP1 lacks inherent binding specificity. Here, we find that APL1C and LRIM1 bind specifically to Plasmodium berghei ookinetes, even after depletion of TEP1 transcript and protein, consistent with a role for the LRR proteins in pathogen recognition. Moreover, APL1C does not bind to ookinetes of the human malaria parasite Plasmodium falciparum, and is not required for killing of this parasite, which correlates LRR binding specificity and immune protection. Most of the live P. berghei ookinetes that migrated into the extracellular space exposed to mosquito hemolymph, and almost all dead ookinetes, are bound by APL1C, thus associating LRR protein binding with parasite killing. We also find that APL1C binds to the surface of P. berghei sporozoites released from oocysts into the mosquito hemocoel and forms a potent barrier limiting salivary gland invasion and mosquito infectivity. Pathogen binding by APL1C provides the first functional explanation for the long-known requirement of APL1C for P. berghei ookinete killing in the mosquito midgut. We propose that secreted mosquito LRR proteins are required for pathogen discrimination and orientation of immune effector activity, potentially as functional counterparts of the immunoglobulin-based receptors used by vertebrates for antigen recognition.


Subject(s)
Anopheles , Malaria , Animals , Humans , Leucine-Rich Repeat Proteins , Anopheles/parasitology , Sporozoites/metabolism , Proteins/metabolism , Plasmodium berghei/metabolism
19.
PLoS Pathog ; 20(4): e1012145, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38598552

ABSTRACT

Wolbachia, a maternally transmitted symbiotic bacterium of insects, can suppress a variety of human pathogens in mosquitoes, including malaria-causing Plasmodium in the Anopheles vector. However, the mechanistic basis of Wolbachia-mediated Plasmodium suppression in mosquitoes is not well understood. In this study, we compared the midgut and carcass transcriptomes of stably infected Anopheles stephensi with Wolbachia wAlbB to uninfected mosquitoes in order to discover Wolbachia infection-responsive immune genes that may play a role in Wolbachia-mediated anti-Plasmodium activity. We show that wAlbB infection upregulates 10 putative immune genes and downregulates 14 in midguts, while it upregulates 31 putative immune genes and downregulates 15 in carcasses at 24 h after blood-fed feeding, the time at which the Plasmodium ookinetes are traversing the midgut tissue. Only a few of these regulated immune genes were also significantly differentially expressed between Wolbachia-infected and non-infected midguts and carcasses of sugar-fed mosquitoes. Silencing of the Wolbachia infection-responsive immune genes TEP 4, TEP 15, lysozyme C2, CLIPB2, CLIPB4, PGRP-LD and two novel genes (a peritrophin-44-like gene and a macro domain-encoding gene) resulted in a significantly greater permissiveness to P. falciparum infection. These results indicate that Wolbachia infection modulates mosquito immunity and other processes that are likely to decrease Anopheles permissiveness to Plasmodium infection.


Subject(s)
Anopheles , Malaria, Falciparum , Plasmodium falciparum , Wolbachia , Animals , Anopheles/parasitology , Anopheles/microbiology , Anopheles/immunology , Wolbachia/immunology , Plasmodium falciparum/immunology , Malaria, Falciparum/immunology , Malaria, Falciparum/parasitology , Mosquito Vectors/parasitology , Mosquito Vectors/microbiology , Mosquito Vectors/immunology , Insect Proteins/genetics , Insect Proteins/metabolism , Insect Proteins/immunology , Transcriptome , Female
20.
Trends Immunol ; 44(4): 256-265, 2023 04.
Article in English | MEDLINE | ID: mdl-36964020

ABSTRACT

Malaria is caused by Plasmodium protozoa that are transmitted by anopheline mosquitoes. Plasmodium sporozoites are released with saliva when an infected female mosquito takes a blood meal on a vertebrate host. Sporozoites deposited into the skin must enter a blood vessel to start their journey towards the liver. After migration out of the mosquito, sporozoites are associated with, or in proximity to, many components of vector saliva in the skin. Recent work has elucidated how Anopheles saliva, and components of saliva, can influence host-pathogen interactions during the early stage of Plasmodium infection in the skin. Here, we discuss how components of Anopheles saliva can modulate local host responses and affect Plasmodium infectivity. We hypothesize that therapeutic strategies targeting mosquito salivary proteins can play a role in controlling malaria and other vector-borne diseases.


Subject(s)
Anopheles , Malaria , Humans , Animals , Female , Anopheles/parasitology , Anopheles/physiology , Saliva , Mosquito Vectors/parasitology , Sporozoites
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