bioRxiv Science⌕ Search

Biology subjects

Devi, R.

Publications and source records attributed to Devi, R..

2 recordsLinked to original sources

A novel micronemal protein, Scot1, is essential for apicoplast biogenesis and liver stage development in Plasmodium berghei

Plasmodium sporozoites invade hepatocytes, transform into liver stages, and replicate into thousands of merozoites that infect erythrocytes and cause malaria. Proteins secreted from micronemes play an essential role in hepatocyte invasion, and unneeded micronemes are subsequently discarded for replication. The liver-stage parasites are potent immunogens that prevent malarial infection. Late liver stage-arresting genetically attenuated parasites (GAPs) exhibit greater protective efficacy than early GAP. However, the number of late liver-stage GAPs for generating GAPs with multiple gene deletions is limited. Here, we identified Scot1 (Sporozoite Conserved Orthologous Transcript 1), which was previously shown to be upregulated in sporozoites, and by endogenous tagging with mCherry, we demonstrated that it is expressed in the sporozoite and liver stages in micronemes. Using targeted gene deletion in Plasmodium berghei, we showed that Scot1 is essential for late liver-stage development. Scot1 KO sporozoites grew normally into liver stages but failed to initiate blood-stage infection in mice due to impaired apicoplast biogenesis and merozoite formation. Bioinformatic studies suggested that Scot1 is a metal/small molecule carrier protein. Remarkably, supplementation with metals in the culture of infected Scot1 KO cells did not rescue their phenotype. Immunization with Scot1 KO sporozoites in C57BL/6 mice confers protection against a malaria challenge via infection. These proof-of-concept studies will enable the generation of P. falciparum Scot1 mutants that could be exploited to generate GAP malaria vaccines. ImportanceMalaria parasites experience significant bottlenecks as transmitted to the mammalian host during a mosquito bite. Sporozoites invade liver cells, reproducing into thousands of merozoites, which are released after liver cell ruptures. The specific arrest of sporozoites during liver stage development acts as a powerful immunogen and provides sterile protection against sporozoite infection. GAP leading to an arrest in late liver stage development offers superior protection. Here, we report that a micronemal protein, Scot1, is essential for parasite maturation in the liver. Deletion of Scot1 resulted in impaired apicoplast biogenesis and merozoite formation. Vaccination with Scot1 KO sporozoites protects against malaria challenge. We have identified a late arresting GAP that will aid in developing new as well as safeguarding existing whole parasite vaccines.

microbiology↗

Multi-Echo Investigations of Positive and Negative CBF and Concomitant BOLD Changes

Unlike the positive blood oxygenation level-dependent (BOLD) response (PBR), commonly taken as an indication of an activated brain region, the physiological origin of negative BOLD signal changes (i.e. a negative BOLD response, NBR), also referred to as deactivation is still being debated. In this work, an attempt was made to gain a better understanding of the underlying mechanism by obtaining a comprehensive measure of the contributing cerebral blood flow (CBF) and its relationship to the NBR in the human visual cortex, in comparison to a simultaneously induced PBR in surrounding visual regions. To overcome the low signal-to-noise ratio (SNR) of CBF measurements, a newly developed multi-echo version of a center-out echo planar-imaging (EPI) readout was employed with pseudo-continuous arterial spin labeling (pCASL). It achieved very short echo and inter-echo times and facilitated a simultaneous detection of functional CBF and BOLD changes at 3 T with improved sensitivity. Evaluations of the absolute and relative changes of CBF and the effective transverse relaxation rate, [Formula], the coupling ratios, and their dependence on CBF at rest, CBFrest, indicated differences between activated and deactivated regions. Analysis of the shape of the respective functional responses also revealed faster negative responses with more pronounced post-stimulus transients. Resulting differences in the flow-metabolism coupling ratios were further examined for potential distinctions in the underlying neuronal contributions. HighlightsO_LIIntroduction of multi-echo center-out EPI for investigating concomitant CBF and BOLD changes in regions of positive (PBR) and negative BOLD response (NBR). C_LIO_LI{Delta}CBF timecourses closely follow those of [Formula] with negative signals exhibiting faster responses and more pronounced post-stimulus transients. C_LIO_LIDecreases in CBF appear to warrant a larger change in NBR than CBF increases in PBR regions. C_LIO_LIConsideration of baseline CBF values is important in comparisons of relative coupling ratios ({delta}sBOLD/{delta}cbf) between brain regions. C_LIO_LIDiscussion of potential excitatory and inhibitory neuronal feed forward control of CBF and CMRO2 in PBR and NBR. C_LI

neuroscience↗