Malaria parasite immune evasion and adaptation to its mosquito host is influenced by the acquisition of multiple blood meals
Kwon, H.; Reynolds, R. A.; Simoes, M. L.; Dimopoulos, G.; Smith, R. C.
Show abstract
A minimum of two blood meals are required for a mosquito to acquire and transmit malaria, yet Anopheles mosquitoes frequently obtain additional blood meals during their adult lifespan. To determine the impact of subsequent blood-feeding on parasite development in Anopheles gambiae, we examined rodent and human Plasmodium parasite infection with or without an additional non-infected blood meal. We find that an additional blood meal significantly reduces P. berghei immature oocyst numbers, yet does not influence mature oocysts that have already begun sporogony. This is in contrast to experiments performed with the human parasite, P. falciparum, where an additional blood meal does not affect oocyst numbers. These observations are reproduced when mosquitoes were similarly challenged with an artificial protein meal, suggesting that parasite losses are due to the physical distension of the mosquito midgut. We provide evidence that feeding compromises the integrity of the midgut basal lamina, enabling the recognition and lysis of immature P. berghei oocysts by the mosquito complement system. Moreover, we demonstrate that additional feeding promotes P. falciparum oocyst growth, suggesting that human malaria parasites exploit host resources provided with blood-feeding to accelerate their growth. This contrasts experiments with P. berghei, where the size of surviving oocysts is independent of an additional blood meal. Together, these data demonstrate differences in the ability of Plasmodium species to evade immune detection and adapt to utilize host resources at the oocyst stage, representing an additional, yet unexplored component of vectorial capacity that has important implications for transmission of malaria.
Matching journals
The top 6 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- The AMA1-RON complex drives Plasmodium sporozoite invasion in the mosquito and mammalian hosts 96%
- Transinfection of Wolbachia wAlbB into Culex quinquefasciatus mosquitoes does not alter vector competence for Hawaiian avian malaria (Plasmodium relictum GRW4) 95%
- The salivary protein Saglin facilitates efficient midgut colonization of Anopheles mosquitoes by malaria parasites 95%
Similar papers in this journal
- RNA polymerase III is involved in regulating Plasmodium falciparum virulence 95%
- Erythrocyte CD55 facilitates the internalization of Plasmodium falciparum parasites 95%
- Exposure to artemisinin at the trophozoite stage increases sexual conversion rates in the malaria parasite Plasmodium falciparum 94%
Similar papers in this journal
- Systematic analysis of Plasmodium myosins reveals differential expression, localization and function in invasive and proliferative parasite stages 95%
- Vital role for Plasmodium berghei Kinesin8B in axoneme assembly during male gamete formation and mosquito transmission 94%
- A patatin-like phospholipase is crucial for gametocyte induction in the malaria parasite Plasmodium falciparum 94%
Similar papers in this journal
- Binding of Leishmania infantum LPG to the midgut is not sufficient to define vector competence in Lutzomyia longipalpis sand flies 95%
- Distribution of malaria parasite-derived phosphatidylcholine in the infected erythrocyte 94%
- 20-hydroxyecdysone (20E) primes innate immune responses that limit bacteria and malaria parasite survival in Anopheles gambiae 93%
Similar papers in this journal
- Plasmodium falciparum guanylyl cyclase-alpha and the activity of its appended P4-ATPase domain are essential for cGMP synthesis and blood stage egress 94%
- The dengue virus NS1 protein alters Aedes aegypti midgut permeability and favors virus dissemination 94%
- Microsporidian obligate intracellular parasites subvert autophagy of infected mammalian host cells to promote their own growth 93%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.