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Pathak, A.

Publications and source records attributed to Pathak, A..

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Cryogenically preserved RBCs support gametocytogenesis of Plasmodium falciparum in vitro and gametogenesis in mosquitoes.

BackgroundThe malaria Eradication Research Agenda (malERA) has identified human-to-mosquito transmission of Plasmodium falciparum as a major target for eradication. The cornerstone for identifying and evaluating transmission in the laboratory is small membrane feeding assays (SMFAs) where mature gametocytes of P. falciparum generated in vitro are offered to mosquitoes as part of a blood-meal. However, propagation of \"infectious\" gametocytes requires 10-12 days with considerable physico-chemical demands imposed on host RBCs and thus, \"fresh\" RBCs that are [≤]1-week old post-collection are generally recommended. However, in addition to the costs, physico-chemical characteristics unique to RBC donors may confound reproducibility and interpretation of SMFAs. Cryogenic storage of RBCs (cryo-preserved RBCs herein) is approved by the European and US FDAs as an alternative to refrigeration (4{degrees}C) for preserving RBC quality and while cryo-preserved RBCs have been used for in vitro cultures of other Plasmodia and the asexual stages of P. falciparum, none of the studies required RBCs to support parasite development for >4 days.\n\nResultsUsing the standard laboratory strain, P. falciparum NF54, we first demonstrate that cryo-preserved RBCs preserved in the gaseous phase of liquid nitrogen and thawed after storage for 1, 4, 8 and 12 weeks, supported gametocytogenesis in vitro and subsequent gametogenesis in Anopheles stephensi mosquitoes. Using data from 11 SMFAs and RBCs from 4 separate donors with 3 donors re-tested following various periods of cryo-preservation, we show that overall levels of sporogony in the mosquito, as measured by oocyst prevalence and burdens in the midguts and sporozoites in salivary glands, were similar or better than using [≤]1-week old refrigerated RBCs. Additionally, the potential for cryo-preserved RBCs to serve as a universal substrate for SMFAs is shown for a Cambodian isolate of P. falciparum.\n\nConclusionsConsidering the suitability of cryo-preserved RBCs for P. falciparum SMFAs, we suggest guidelines for their use and how they can be integrated into an existing laboratory/insectary framework with the potential to significantly reduce running costs and provide greater reliability. Finally, we discuss scenarios where cryo-preserved RBCs may be especially useful in enhancing our understanding and/or providing novel insights into the patterns and process underlying human-to-mosquito transmission.

microbiology

Energy metabolites mediated cross-protection to heat, drought and starvation induced plastic responses in tropical D. ananassae of wet-dry seasons

Cross-tolerance effects for cold and drought stressors are well known for temperate and polar ectothermic organisms. However, less attention has been paid to plastic changes induced by wet-dry conditions for the tropical insect taxa. Drosophila ananassae is abundant in wet habitats but its desiccation sensitivity is likely to make it vulnerable under expected drought conditions due to climate change. We tested plastic effects of heat hardening, acclimation to drought or starvation; and changes in trehalose, proline and body lipids in D. ananassae flies reared under wet or dry season specific conditions. Wet season flies showed significant increase in heat knockdown, starvation resistance and body lipids after heat hardening. However, accumulation of proline was observed only after desiccation acclimation of dry season flies while wet season flies elicited no proline but trehalose only. Thus, drought induced proline can be a marker metabolite for dry season flies. Further, partial utilization of proline and trehalose under heat hardening reflects their possible thermoprotective effects. Heat hardening elicited cross-protection to starvation stress. Stressor specific accumulation or utilization as well as rates of metabolic change for each energy metabolite were significantly higher in wet season flies than dry season flies. Energy budget changes due to inter-related stressors (heat vs desiccation or starvation) resulted in possible maintenance of energetic homeostasis in wet or dry season flies. Thus, low or high humidity induced plastic changes in energy metabolites can provide cross-protection to seasonally varying climatic stressors.\n\nSummary statementIn the tropical Drosophila ananassae, low or high humidity induced plastic changes in energy metabolites provide cross-protection to seasonally varying climatic stressors

evolutionary biology