Abundant genetic variation is retained in many laboratory schistosome populations
Jutzeler, K. S.; Platt, R. N.; Diaz, R.; Morales, M.; Le Clec'h, W.; Chevalier, F.; Anderson, T. J.
Show abstract
Schistosomes are obligately sexual blood flukes that can be maintained in the laboratory using freshwater snails as intermediate and rodents as definitive hosts. The genetic composition of laboratory schistosome populations is poorly understood: whether genetic variation has been purged due to serial inbreeding or retained is unclear. We sequenced 19 - 24 parasites from each of five laboratory Schistosoma mansoni populations and compared their genomes with published exome data from four S. mansoni field populations. We found abundant genomic variation (0.897 - 1.22 million variants) within laboratory populations: these retained on average 49% ({pi} = 3.27e-04 - 8.94e-04) of the nucleotide diversity observed in the four field parasite populations ({pi} = 1.08e-03 - 2.2e-03). However, the pattern of variation was very different in laboratory and field populations. Tajimas D was positive in all laboratory populations except SmBRE, indicative of recent population bottlenecks, but negative in all field populations. Current effective population size estimates of laboratory populations were lower (2 - 258) compared to field populations (3,174 - infinity). The distance between markers at which linkage disequilibrium (LD) decayed to 0.5 was longer in laboratory populations (59 bp - 180 kb) compared to field populations (9 bp - 9.5 kb). SmBRE was the least variable; this parasite also shows low fitness across the lifecycle, consistent with inbreeding depression. The abundant genetic variation present in most laboratory schistosome populations has several important implications: (i) measurement of parasite phenotypes, such as drug resistance, using laboratory parasite populations will determine average values and underestimate trait variation; (ii) genome-wide association studies (GWAS) can be conducted in laboratory schistosome populations by measuring phenotypes and genotypes of individual worms; (iii) genetic drift may lead to divergence in schistosome populations maintained in different laboratories. We conclude that the abundant genetic variation retained within many laboratory schistosome populations can provide valuable, untapped opportunities for schistosome research.
Matching journals
The top 1 journal accounts for 50% of the predicted probability mass.
Similar papers in this journal
- Linked surveillance and genetic data uncovers programmatically relevant geographic scale of Guinea worm transmission in Chad 96%
- Potential drivers for schistosomiasis persistence: population genetic analyses from a cluster-randomized urogenital schistosomiasis elimination trial across the Zanzibar islands 96%
- Population genomic evidence that human and animal infections in Africa come from the same populations of Dracunculus medinensis 95%
Similar papers in this journal
- Schistosoma mansoni α-N-acetylgalactosaminidase (SmNAGAL) regulates coordinated parasite movement and egg production 95%
- A mating-induced reproductive gene promotes Anopheles tolerance to Plasmodium falciparum infection 95%
- A decade of stability for wMel Wolbachia in natural Aedes aegypti populations 95%
Similar papers in this journal
Similar papers in this journal
Similar papers in this journal
- Great-tailed Grackles (Quiscalus mexicanus) as a tolerant host of avian malaria parasites 92%
- The dimerisable Cre recombinase allows conditional genome editing in the mosquito stages of Plasmodium berghei 92%
- Systematic review of Plasmodium falciparum and Plasmodium vivax polyclonal infections: Impact of prevalence, study population characteristics, and laboratory procedures 92%
"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.