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Stoter, R.

Publications and source records attributed to Stoter, R..

10 recordsLinked to original sources

Controlled human infection with Plasmodium falciparum-infected mosquito bites elicits antibodies against mosquito salivary protein SG1L3

Human malaria infections begin with the injection of Plasmodium sporozoites via mosquito saliva. Whole sporozoite immunizations have been used as a model to study immune responses to malaria parasites, having culminated in circumsporozoite protein (CSP)-targeting vaccines and monoclonal antibodies (mAbs). However, antibody responses targeting non-CSP antigens on the sporozoite surface remain poorly characterized. Here, we isolated single B cells from a human volunteer immunized by Plasmodium falciparum-infected mosquito bites, who had acquired non-CSP-specific antibodies that recognize sporozoites. We identified two mAbs that recognize the surface of P. falciparum sporozoites, but do not bind to CSP. Using immunoprecipitation followed by mass-spectrometry, we found that the target of these mAbs is not a P. falciparum protein but the mosquito salivary protein SG1L3. We observed that recombinant SG1L3 binds to P. falciparum sporozoites. However, the SG1L3-specific mAbs and SG1L3-specific polyclonal antibodies from this volunteer, as well as polyclonal antibodies raised against recombinant SG1L3 in rabbits, fail to block liver stage infection in vitro, making this an unlikely target for functional antibodies. We observed that inhabitants from an area with intense Anopheles exposure in Burkina Faso can have antibodies against SG1L3, and that antibody titers increase with age. In conclusion, we identified the first human mAbs against a mosquito saliva protein that binds to the surface of sporozoites. Future work should assess whether naturally acquired antibodies against this protein may be used as a serological marker of mosquito exposure.

microbiology↗

Deep behavioral phenotyping of pathogen infected mosquitoes reveals species-specific behavior changes enhancing transmission

Mosquito-borne pathogens are often proposed to alter mosquito behavior to enhance transmission, yet the prevalence, magnitude, and consequences of such effects remain unclear. Using custom high- throughput behavioral assays and deep-learning analysis, we quantified the blood-feeding behavior of more than 5,000 mosquitoes, and long-term activity patterns of more than 1,000 mosquitoes across six clinically relevant mosquito-pathogen combinations. Infection effects were highly species-specific. Anopheles stephensi infected with an African Plasmodium falciparum strain showed elevated flight activity throughout infection, an increased tendency to blood-feed upon host contact, and prolonged feeding times. In contrast, infection with an Asian P. falciparum strain or P. vivax had little impact on An. stephensi behavior. We detected no behavioral changes associated with P. falciparum infection in Anopheles gambiae s.s. or Anopheles coluzzii. Interestingly, dengue virus infection in Aedes aegypti increased landing, probing, and engorgement rates. Together, these results demonstrate that infection-induced behavioral change is not a general phenomenon among mosquito-borne pathogens, yet differs markedly per mosquito and pathogen species. A transmission model parameterized with our data showed that even modest behavioral shifts can substantially increase transmission, underscoring the potential epidemiological importance of subtle phenotypic shifts.

animal behavior and cognition↗

Expelling of P. falciparum sporozoites by Anopheles stephensi mosquitoes during repeated feeding

It is currently unclear whether repeated mosquito feeding attempts achieve pathogen transmission. We measured Plasmodium falciparum sporozoite expelling in Anopheles stephensi mosquitoes during two interrupted feeding attempts. The number of expelled sporozoites was positively correlated with salivary gland sporozoite load during the first feeding effort ({rho}= 0.36, p= 0.0181) but less so during subsequent feeding ({rho}= 0.06, p= 0.6811). The median number of expelled sporozoites was of similar magnitude during the first and second feeding event, with a strong correlation between them ({rho}= 0.56, p= 0.0002). We conclude that repeated feeding results in repeated sporozoite inoculation at similar intensity.

microbiology↗

Building without the architect: the dispensable role of MICOS in de novo cristae formation in malaria parasites

The malaria parasite mitochondria represent the only tractable, naturally occurring system in which cristae, the characteristic invaginations of the inner mitochondrial membrane, are known to be formed de novo. In traditional model organisms, the central complex involved in cristae organization is the mitochondrial contact site and cristae organizing system (MICOS). However, whether MICOS has an active role in the initial formation of cristae remains unclear. We identified two putative Plasmodium falciparum MICOS components, PfMIC19 and PfMIC60 and show that both genes are dispensable in asexual blood stages, gametocytes, and mosquito stages, albeit with a mild reduction in oocyst numbers. Immunofluorescence microscopy and electron tomography of gametocytes lacking either or both MICOS orthologues showed aberrant mitochondrial morphology and abnormal cristae, with a marked reduction of crista junctions. Thus, by utilizing the unique properties of P. falciparum, we confirmed the involvement of PfMIC19 and PfMIC60 in the organization of crista junctions, while providing evidence that MICOS is not required for the initial formation of cristae.

microbiology↗

Structure of endogenous Pfs230:Pfs48/45 in complex with potent malaria transmission-blocking antibodies

The Pfs230:Pfs48/45 complex forms the basis for leading malaria transmission-blocking vaccine candidates, yet li]le is known about its molecular assembly. Here, we used cryogenic electron microscopy to elucidate the structure of the endogenous Pfs230:Pfs48/45 complex bound to six potent transmission-blocking antibodies. Pfs230 consists of multiple domain clusters rigidified by interactions mediated through insertion domains. Membrane-anchored Pfs48/45 forms a disc-like structure and interacts with a short C-terminal peptide on Pfs230 that is critical for Pfs230 membrane-retention in vivo. Interestingly, membrane retention through this interaction is not essential for transmission to mosquitoes, suggesting that complex disruption is not a mode of action for transmission-blocking antibodies. Analyses of Pfs48/45-and Pfs230-targeted antibodies identify conserved epitopes on the Pfs230:Pfs48/45 complex and provides a structural paradigm for complement-dependent activity of Pfs230-targeting antibodies. Altogether, the antibody-bound Pfs230:Pfs48/45 structure presented improves our molecular understanding of this biological complex, informing the development of next-generation Plasmodium falciparum transmission-blocking interventions.

molecular biology↗

Gametocyte production and transmission fitness of African and Asian Plasmodium falciparum isolates with differential susceptibility to artemisinins

The emergence of Plasmodium falciparum parasites partially resistant to artemisinins (ART-R) poses a significant threat to recent gains in malaria control. ART-R has been associated with PfKelch13 (K13) mutations, which differ in fitness costs. This study investigates the gametocyte production and transmission fitness of African and Asian P. falciparum isolates with different K13 genotypes across multiple mosquito species. We tested three ART-sensitive (ART-S) isolates (NF54, NF135, NF180) and three ART-R isolates (ARN1G, 3815, PAT-023) for sexual conversion and transmission to Anopheles stephensi, An. gambiae and An. coluzzii. ART-R levels were quantified in vitro using the Ring-stage Survival Assay (RSA), and the transmission-reducing effects of dihydroartemisinin (DHA) on mature gametocytes were assessed. Results showed that ART-S parasite lines consistently produced gametocytes and transmitted effectively in all three mosquito species. ART-R isolates showed variability: ARN1G maintained high transmission levels, whereas 3815 showed limited transmission potential despite higher sporozoite loads in An. coluzzii. The African ART-R isolate PAT-023 demonstrated low gametocyte commitment but was transmitted efficiently in both An. gambiae and An. coluzzii. DHA exposure reduced mosquito infectivity for all isolates, regardless of K13 genotype. These findings, based on a limited number of field isolates, suggest that ART-R parasites remain transmissible across different Anopheles species. However, ART-R does not appear to confer a direct transmission advantage. This study highlights the complexity of ART-R dynamics and underscores the need for further research to inform malaria control strategies in regions where ART-R parasites are circulating.

microbiology↗

Pfs230 Domain 12 is a potent malaria transmission-blocking vaccine candidate

Malaria transmission-blocking vaccines (TBV) target sexual stage parasites that are transmitted to mosquitoes and critical for spread of the pathogen. The clinically most advanced TBV candidate contains part of the Pro-domain (Pro) and Domain 1 (D1) of Plasmodium falciparum surface protein Pfs230. Subunit vaccines that contain other domains of Pfs230 have so far failed to induce functional antibodies. Here, we produced eight single domain fragments of Pfs230 in Drosophila melanogaster S2 cells and assessed their immunogenicity in mouse immunizations. In addition to D1-specific antibodies, antibodies raised against Domain 12 (D12) showed strong recognition of Pfs230 on the surface of female parasites. Importantly, D12-specific antibodies showed strong functional transmission-reducing activity in membrane feeding assays with cultured parasites, an activity that was complement-dependent. Murine D12-specific antibodies further reduced mosquito transmission of parasites acquired from naturally infected parasite carriers. The D12 antigen was recognized by sera from an all-age cohort of individuals who had been naturally exposed to Plasmodium falciparum with antibody levels increasing with age. In conclusion, we identified Pfs230D12 as a promising new TBV candidate. Impact statementPfs230 Domain 12 induces antibodies in mice that strongly reduce transmission of lab-cultured and naturally circulating malaria parasites to mosquitoes.

immunology↗

AlbuMAX supplemented media induces the formation of transmission-competent P. falciparum gametocytes

Asexual blood stage culture of Plasmodium falciparum is routinely performed but reproducibly inducing commitment to and maturation of viable gametocytes remains difficult. Culture media can be supplemented with human serum substitutes to induce commitment but these generally only allow for long-term culture of asexual parasites and not transmission-competent gametocytes due to their different lipid composition. Recent insights demonstrated the important roles lipids play in sexual commitment; elaborating on this we exposed ring stage parasites (20-24 hours hpi) for one day to AlbuMAX supplemented media to trigger induction to gametocytogenesis. We observed a significant increase in gametocytes after AlbuMAX induction compared to serum. We also tested the transmission potential of AlbuMAX inducted gametocytes and found a significant higher oocyst intensity compared to serum. We conclude that AlbuMAX supplemented media induces commitment, allows a more stable and predictable production of transmittable gametocytes than serum alone. HighlightsGametocytes are formed when asexual parasites commit to sexual differentiation. Sexual commitment can be promoted by environmental stressors in media formulations. Short exposure of young asexual parasites to the serum substitute AlbuMAX achieves high proportion of committed gametocytes that are transmission-competent.

microbiology↗

A transmission bottleneck for malaria? Quantification of sporozoite expelling from laboratory and natural P. falciparum infections

It is currently unknown whether all Plasmodium falciparum infected mosquitoes are equally infectious. We assessed sporogonic development using cultured gametocytes in the Netherlands and naturally circulating strains in Burkina Faso. We quantified the number of sporozoites expelled into artificial skin in relation to intact oocysts, ruptured oocysts, and residual salivary gland sporozoites. Sporozoites were quantified by highly sensitive qPCR; intact and ruptured oocysts by fluorescence microscopy following antibody staining of circumsporozoite protein. In laboratory conditions, higher total sporozoite burden in mosquitoes was associated with a shorter duration of sporogony (p<0.001). Overall, 53% (116/216) of P. falciparum infected An. stephensi mosquitoes expelled sporozoites into artificial skin. The medians of expelled and residual salivary gland sporozoites were 136 (IQR: 34-501) and 23,947 (IQR: 9127-78,380), respectively. There was a strong positive correlation between ruptured oocyst number and salivary gland sporozoite load ({rho}=0.8; p<0.0001) and a weaker positive correlation between salivary gland sporozoite load and the number of sporozoites expelled ({rho}=0.35; p=0.0002). In Burkina Faso, An. coluzzii mosquitoes were infected by natural gametocyte carriers. Among mosquitoes that were salivary gland sporozoite positive, 89% (33/37) expelled sporozoites with a median of 1035 expelled sporozoites (IQR: 171-2969) and harbored a median of 45,100 residual salivary gland sporozoites (IQR: 20,310-164,900). Again, we observed a strong correlation between ruptured oocyst number and salivary gland sporozoite load ({rho}=0.9; p<0.0001) and a positive correlation between salivary gland sporozoite load and the number of sporozoites expelled ({rho}=0.7; p<0.0001). Mosquito salivary glands in Burkina Faso harbored 1-3 distinct parasite clones; several mosquitoes expelled multiple parasite clones during probing. Whilst sporozoite expelling was regularly observed from mosquitoes with low infection burdens, our findings indicate that mosquito infection burden is associated with the number of expelled sporozoites. Future work is required to determine the direct implications of these findings for transmission potential.

microbiology↗

Comparative assessment of mosquito size and receptiveness to P. falciparum infection of two rearing procedures for Anopheles mosquitoes

Malaria is transmitted when Anopheline mosquitoes ingest Plasmodium parasites during blood-feeding. Artificial feeding assays allow mosquitoes to take up blood from membrane feeders, and are widely used to study malaria transmission. These assays require large quantities of mosquitoes; insectaries optimize their rearing procedures to generate high yields of permissive, homogeneous mosquito populations. Rearing of Anopheline stephensi mosquitoes was protocolized at the Radboudumc in the 1980s, yet infection outcomes remain heterogeneous. This study explores possible improvements in mosquito rearing to improve homogeneity of the resulting mosquito populations. It compares the current mass-rearing standard with an adapted alternative approach from another institute that optimizes larval density per tray and applies a diet that has previously been reported. Differences between procedures were assessed by measuring mosquito size by proxy of wing-length and imbibed blood meal volume. To assess receptiveness to P. falciparum infection mosquitoes were fed cultured gametocytes. We observed a slight decrease in mosquito size when applying the alternative rearing procedure, but generated equally parasite-receptive P. falciparum mosquitoes compared to the standard procedure. We conclude that both rearing protocols can be used to generate susceptible mosquitoes for conducting malaria research.

systems biology↗