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1.
Sci Transl Med ; 13(625): eabj9114, 2021 12 22.
Article in English | MEDLINE | ID: mdl-34936381

ABSTRACT

Mass drug administration with praziquantel (PZQ) monotherapy is considered the mainstay for control and elimination of the parasites causing schistosomiasis in humans. This drug shows imperfect cure rates in the field, and parasites showing reduced PZQ response can be selected in the laboratory, but the extent of resistance in Schistosoma mansoni populations is unknown. We examined the genetic basis of the variation in response in a PZQ-selected S. mansoni population (SmLE-PZQ-R) in which 35% of the parasitic worms survive high-dose PZQ (73 micrograms per milliliter) treatment. We used genome-wide association to map loci underlying PZQ response and identified a transient receptor potential (Sm.TRPMPZQ) channel (Smp_246790) within the major chromosome 3 peak that is activated by nanomolar concentrations of PZQ. The PZQ response showed recessive inheritance and marker-assisted selection of parasites at a single Sm.TRPMPZQ SNP that produced populations of PZQ-enriched resistant (PZQ-ER) and PZQ-enriched sensitive (PZQ-ES) parasites, exhibiting >377-fold difference in PZQ response. The PZQ-ER parasites survived treatment in rodents at higher frequencies compared with PZQ-ES, and resistant parasites exhibited 2.25-fold lower expression of Sm.TRPMPZQ relative to sensitive parasites. Specific chemical blockers of Sm.TRPMPZQ enhanced PZQ resistance, whereas Sm.TRPMPZQ activators increased sensitivity. We surveyed Sm.TRPMPZQ sequence variations in 259 parasites from different global sites and identified one nonsense mutation that resulted in a truncated protein with no PZQ binding site. Our results demonstrate that Sm.TRPMPZQ underlies variation in PZQ responses in S. mansoni and provides an approach for monitoring emerging PZQ-resistant alleles in schistosome elimination programs.


Subject(s)
Anthelmintics , Parasites , Schistosomiasis mansoni , Transient Receptor Potential Channels , Animals , Anthelmintics/pharmacology , Anthelmintics/therapeutic use , Genome-Wide Association Study , Parasites/metabolism , Praziquantel/pharmacology , Praziquantel/therapeutic use , Schistosomiasis mansoni/drug therapy , Schistosomiasis mansoni/epidemiology , Schistosomiasis mansoni/parasitology , Transient Receptor Potential Channels/metabolism , Transient Receptor Potential Channels/therapeutic use
2.
Environ Microbiol ; 22(12): 5450-5466, 2020 12.
Article in English | MEDLINE | ID: mdl-33169917

ABSTRACT

The microbiome - the microorganism community that is found on or within an organism's body - is increasingly recognized to shape many aspects of its host biology and is a key determinant of health and disease. Microbiomes modulate the capacity of insect disease vectors (mosquitoes, tsetse flies, sandflies) to transmit parasites and disease. We investigate the diversity and abundance of microorganisms within the hemolymph (i.e. blood) of Biomphalaria snails, the intermediate host for Schistosoma mansoni, using Illumina MiSeq sequencing of the bacterial 16S V4 rDNA. We sampled hemolymph from five snails from six different laboratory populations of B. glabrata and one population of B. alexandrina. We observed 279.84 ± 0.79 amplicon sequence variants per snail. There were significant differences in microbiome composition at the level of individual snails, snail populations and species. Snail microbiomes were dominated by Proteobacteria and Bacteroidetes while water microbiomes from snail tank were dominated by Actinobacteria. We investigated the absolute bacterial load using qPCR: hemolymph samples contained 2784 ± 339 bacteria/µl. We speculate that the microbiome may represent a critical, but unexplored intermediary in the snail-schistosome interaction as hemolymph is in very close contact with the parasite at each step of its development.


Subject(s)
Biomphalaria/microbiology , Disease Vectors , Hemolymph/microbiology , Microbiota , Schistosomiasis/transmission , Animals , Bacteria/classification , Bacteria/genetics , Bacteria/isolation & purification , Biomphalaria/classification , Host Specificity , RNA, Ribosomal, 16S/genetics , Schistosoma mansoni/physiology
3.
Parasit Vectors ; 12(1): 485, 2019 Oct 16.
Article in English | MEDLINE | ID: mdl-31619284

ABSTRACT

BACKGROUND: Parasite traits associated with transmission success, such as the number of infective stages released from the host, are expected to be optimized by natural selection. However, in the trematode parasite Schistosoma mansoni, a key transmission trait, i.e. the number of cercariae larvae shed from infected Biomphalaria spp. snails, varies significantly within and between different parasite populations and selection experiments demonstrate that this variation has a strong genetic basis. In this study, we compared the transmission strategies of two laboratory schistosome population and their consequences for their snail host. METHODS: We infected inbred Biomphalaria glabrata snails using two S. mansoni parasite populations (SmBRE and SmLE), both isolated from Brazil and maintained in the laboratory for decades. We compared life history traits of these two parasite populations by quantifying sporocyst growth within infected snails (assayed using qPCR), output of cercaria larvae and impact on snail host physiological response (i.e. hemoglobin rate, laccase-like activity) and survival. RESULTS: We identified striking differences in virulence and transmission between the two studied parasite populations. SmBRE (low shedder (LS) parasite population) sheds very low numbers of cercariae and causes minimal impact on the snail physiological response (i.e. laccase-like activity, hemoglobin rate and snail survival). In contrast, SmLE (high shedder (HS) parasite population) sheds 8-fold more cercariae (mean ± SE cercariae per shedding: 284 ± 19 vs 2352 ± 113), causes high snail mortality and has strong impact on snail physiology. We found that HS sporocysts grow more rapidly inside the snail host, comprising up to 60% of cells within infected snails, compared to LS sporocysts, which comprised up to 31%. Cercarial production is strongly correlated to the number of S. mansoni sporocyst cells present within the snail host tissue, although the proportion of sporocyst cells alone does not explain the low cercarial shedding of SmBRE. CONCLUSIONS: We demonstrated the existence of alternative transmission strategies in the S. mansoni parasite consistent with trade-offs between parasite transmission and host survival: a "boom-bust" strategy characterized by high virulence, high transmission and short duration infections and a "slow and steady" strategy with low virulence, low transmission but long duration of snail host infections.


Subject(s)
Biomphalaria/parasitology , Schistosoma mansoni/physiology , Schistosoma mansoni/pathogenicity , Schistosomiasis mansoni/parasitology , Schistosomiasis mansoni/transmission , Animals , Biomphalaria/physiology , Brazil , Cercaria , Cohort Studies , Cricetinae , DNA, Helminth/chemistry , DNA, Helminth/isolation & purification , Disease Vectors , Female , Hemoglobins/analysis , Hemolymph/chemistry , Hemolymph/enzymology , Humans , Laccase/analysis , Male , Mesocricetus , Multiplex Polymerase Chain Reaction , Real-Time Polymerase Chain Reaction , Schistosoma mansoni/growth & development , Sex Ratio , Virulence
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