bioRxiv Science⌕ Search

Biology subjects

Barber, B. E.

Publications and source records attributed to Barber, B. E..

2 recordsLinked to original sources

Genomic epidemiology of Plasmodium knowlesi reveals putative genetic drivers of adaptation in Malaysia.

Sabah, Malaysia, has amongst the highest burden of human Plasmodium knowlesi infection in the country, associated with increasing encroachment on the parasites macaque host habitat. However, the genomic make-up of P. knowlesi in Sabah was previously poorly understood. To inform on local patterns of transmission and putative adaptive drivers, we conduct population-level genetic analyses of P. knowlesi human infections using 52 new whole genomes from Sabah, Malaysia, in combination with publicly available data. We identify the emergence of distinct geographical subpopulations within the macaque-associated clusters using IBD-based connectivity analysis. Secondly, we report on introgression events between the clusters, which may be linked to differentiation of the subpopulations, and that overlap genes critical for survival in human and mosquito hosts. Using village-level locations from P. knowlesi infections, we also identify associations between several introgressed regions and both intact forest perimeter-area ratio and mosquito vector habitat suitability. Our findings provide further evidence of the complex role of changing ecosystems and sympatric macaque hosts in Malaysia driving distinct genetic changes seen in P. knowlesi populations. Future expanded analyses of evolving P. knowlesi genetics and environmental drivers of transmission will be important to guide public health surveillance and control strategies. Author SummaryThe zoonotic P. knowlesi parasite is an emerging, yet understudied, cause of malaria in Southeast Asia. Sabah, Malaysia, has amongst the highest burden of human P. knowlesi infection in the country, however, the region is currently understudied. Thus, we produced a collection of high-quality P. knowlesi genomes from Sabah, and in combination with publicly available data, performed an extensive population genetics analysis. Our work contributes novel insights for Plasmodium knowlesi population genetics and genetic epidemiology.

genomics↗

Characterisation of Plasmodium vivax lactate dehydrogenase dynamics in P. vivax infections

Plasmodium vivax lactate dehydrogenase (PvLDH) is an essential enzyme in the glycolytic pathway of Plasmodium vivax. It can also be used as a diagnostic biomarker. Quantitation of plasma PvLDH has been used as a measure of P. vivax biomass in clinical studies of uncomplicated and severe vivax malaria. With the increasing importance of PvLDH in studying P. vivax diagnosis and infection, improved characterisation of the dynamics of this biomarker is important. In this study, we developed mathematical models that capture parasite and matrix PvLDH dynamics in ex vivo culture and the human host. We estimated the biological parameters using ex vivo and in vivo longitudinal data of parasitemia and PvLDH concentration collected from P. vivax-infected humans using Bayesian hierarchical inference. We found that the ex vivo and in vivo estimates of PvLDH in a parasitized red blood cell differed significantly across the asexual life cycle, with in vivo estimates at least ten-fold higher than ex vivo estimates (for example, the median estimate of intraerythrocytic PvLDH mass at the end of the life cycle was 9.4x10-3 ng in vivo vs. 5.1x10-4 ng ex vivo). We also estimated the ex vivo PvLDH half-life to be 65.3 h (95% credible interval: 60.8--70.7 h), which is approximately three times longer than the median estimate of the in vivo PvLDH half-life, 21.9 h (16.7--29.9 h). Our findings provide an important foundation to further improve quantitative understanding of P. vivax biology and facilitate the development of PvLDH-based diagnostic tools.

biophysics↗