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Shafi, S.

Publications and source records attributed to Shafi, S..

4 recordsLinked to original sources

Selective targeting of Plasmodium falciparum hexose transporter by phytochemical Ginsenoside Rg1 disrupts glucose metabolism and block development of parasite

The emergence of resistance to first-line antimalarial therapies highlights the critical need for next-generation drugs that target distinct molecular pathways and employ novel mechanisms of action. Notably, the intra-erythrocytic parasite development is highly dependent on a sustained glucose supply as their fundamental energy source. Therefore, exploiting a "selective starvation" strategy, by targeting the parasites reliance on glucose metabolism, particularly through the Plasmodium falciparum hexose transporter (PfHT1), which is critical for parasite survival can serve as a promising therapeutic approach to combat multidrug-resistant Plasmodium parasites. Through molecular docking and structure-based drug design approach, we identified a natural compound, Ginsenoside Rg1 (G-Rg1) from drug bank database library, as a potential PfHT1 inhibitor. The PfHT1 specificity of G-Rg1 was validated using yeast complementation model. Subsequently, to investigate the role of PfHT1 in drug resistant Pf parasites we investigated the stage-specific expression of PfHT1 in both artemisinin (ART)-sensitive and resistant Pf parasites and reported its elevated expression in resistant parasites, predicting its role in their survival. Notably, in vitro growth inhibition studies demonstrated that G-Rg1 effectively suppressed the growth of both ART-sensitive and resistant Pf parasites. Additionally, G-Rg1 potentiated the efficacy of dihydroartemisinin in combination and ring survival assays, indicating its potential to circumvent resistance mechanisms. G-Rg1 administration alone and in combination with ART, in P. berghei ANKA-infected mice reduced parasite multiplication and increased mean survival time. Our findings support G-Rg1 as a promising candidate for drug development against malaria, highlighting the potential of targeting PfHT1 to combat drug-resistant malaria.

pharmacology and toxicology↗

Targeting Leishmania donovani Sphingosine Kinase 1 using PF-543 enhances immune response and limits parasite load

BackgroundSphingosine-1-phosphate (S1P) is a bioactive lipid mediator regulating apoptosis, proliferation, and immune responses. While S1Ps presence in Leishmania donovani phagolysosomes has been reported, the role of sphingosine kinases, especially SphK1, in parasite survival and host immune modulation remains underexplored. This study investigates the molecular and functional role of L. donovani SphK1 (LdSphK1) and evaluates the antileishmanial potential of PF-543, a specific SphK1 inhibitor. MethodsLdSphK1 and human SphK1 (rhSphK1) were cloned, expressed in E. coli, purified, and analyzed by SDS-PAGE. Enzymatic activity and inhibition by PF543 were assessed using NBD-S1P-based fluorometric assays. Protein-ligand interactions were analyzed using Microscale Thermophoresis (MST). Leishmania promastigotes overexpressing LdSphK1 were studied via confocal microscopy, and their viability and infectivity were assessed in vitro. THP-1 macrophages infected with L. donovani were treated with PF543 alone or with Amphotericin B and analyzed by MTT assay, RT-PCR, Giemsa staining, ELISA and immunoblotting. In vivo efficacy was tested in L. donovani-infected Swiss mice. ResultsrLdSphK1 ([~]102 kDa) and rhSphK1 ([~]50 kDa) were enzymatically active and significantly inhibited by PF-543. MST confirmed high-affinity binding of PF-543 (KD [~]29 microMolar). In L. donovani SphK1 overexpressor (LdSphKa) promastigotes, PF543 inhibited SphK1 activity and reduced parasite infectivity, more than in wildtype L. donovani promastigotes. Notably, PF543 treatment reduced parasite infectivity in vitro, lowered amastigote load by [~]40%, and promoted a pro-inflammatory cytokine shift ({uparrow}IL-12, {uparrow}TNF-, {downarrow}IL-10). Inhibition of ceramide synthesis and S1P supplementation revealed that S1P rescues ceramide-induced parasite death, implicating SphK1 in parasite survival. PF543 and Amphotericin B demonstrated synergistic anti-parasitic effects both in vitro and in vivo, with >90% reduction in parasite burden in mice. ConclusionPF543 is a potent inhibitor of SphK1, impairing parasite survival and modulating host immune responses. When combined with Amphotericin B, it offers a synergistic therapeutic strategy against visceral leishmaniasis, warranting further clinical exploration. Author SummaryLeishmaniasis, a neglected tropical disease, has limited available treatments and is becoming more resistant to medications. In this study, we explored the therapeutic potential of PF-543, a potent sphingosine kinase 1 (SphK1) inhibitor (demonstrated anticancer effects in various preclinical models) against Leishmania donovani. We successfully cloned and purified both Leishmania and human SphK1 proteins and confirmed PF-543 binding through biochemical and biophysical assays. Overexpression of LdSphK1 in parasites enhanced their survival and infectivity. In vitro, PF-543 treatment of infected macrophages decreased amastigote burden, shifted cytokine profiles towards a pro-inflammatory state, and enhanced host cell apoptosis. Notably, PF-543 acted synergistically with Amphotericin B, the current clinical drug, both in vitro and in vivo in Swiss mice, drastically lowering parasite burden. This study highlights the possibility of combination therapy and finds PF-543 to be a promising irresistible host-targeted antileishmanial drug. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=151 SRC="FIGDIR/small/652326v2_ufig1.gif" ALT="Figure 1"> View larger version (36K): org.highwire.dtl.DTLVardef@1926575org.highwire.dtl.DTLVardef@4305f4org.highwire.dtl.DTLVardef@3c10c7org.highwire.dtl.DTLVardef@171801e_HPS_FORMAT_FIGEXP M_FIG C_FIG

pathology↗

Evaluation of Immunopharmacological Efficacy of Live Leishmania donovani Overexpressing Ld_ζ1domain for Protection Against Experimental Human Visceral Leishmaniasis

ObjectiveTo evaluate the efficacy and immunogenicity of the zeta domain over-expressing Leishmania donovani (Ld_{zeta}1domain) as a vaccination candidate against visceral leishmaniasis (VL). MethodsIn this study, Leishmania overexpressor Ld_{zeta}1domain (OE) were transformed by electroporation using a GFP-tagged Ld_{zeta}1domain recombinant plasmid. The resulting overexpressing cells were analysed in vitro to assess their growth dynamics and infectivity. We also investigated the immune-protective potential of these overexpressor in a mouse model challenged with Leishmania donovani. The immune response, including Th1 and Th2 pathways, was thoroughly characterized using RT-PCR and ELISA assays. In addition, the study conducted a thorough evaluation of the mouses spleen and liver parasites, as well as quantitative evaluation of tissue pathological changes. ResultsLd_{zeta}1 domain (OE) parasites exhibited significantly lower viability and replication rates than WT parasites, and in vivo studies showed that mice immunized with the Ld_{zeta}1(OE) domain had lower parasite numbers than mice infected with LdWT. Spleen and liver showed significant histological changes suggestive of protection. Parasite burden in the spleen and liver of vaccinated mice were significantly reduced. The immune response showed increased IFN-{gamma} levels and lower IL-10 production, resulting in a greater IFN-{gamma}/IL-10 ratio, indicating parasite elimination. The vaccination also caused a significant IgG humoral response and increased nitric oxide production in immunized mice. ConclusionOur findings demonstrated that overexpressing the zeta toxin resulted in controlled parasite attenuation, lowering pathogenicity while retaining immunogenic features. Our work established the zeta over-expressors protective efficacy, immunogenicity, and proliferation in response to a Leishmania challenge in vitro and in vivo. This preliminary prototype study suggested that Ld_{zeta}1domain (OE) parasites may be suitable for developing an attenuated vaccine against leishmaniasis. Graphical representation O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=88 SRC="FIGDIR/small/630021v1_ufig1.gif" ALT="Figure 1"> View larger version (18K): org.highwire.dtl.DTLVardef@32dfc0org.highwire.dtl.DTLVardef@1ffe89dorg.highwire.dtl.DTLVardef@d9feorg.highwire.dtl.DTLVardef@1e7bae7_HPS_FORMAT_FIGEXP M_FIG C_FIG A schematic representation on the protective effectiveness, immunogenicity, and proliferation of the zeta over-expressor in response to Leishmania challenge in vitro and in vivo model.

pathology↗

Tackling emerging artemisinin resistance by modulating the defensive oxido-reductive mechanism of human malaria parasite by repurposing nitrofurantoin

Oxidative stress mediated cell death has remained the prime parasiticidal mechanism of front line anti-malarial, artemisinin (ART). The emergence of resistant Plasmodium parasites characterized by oxidative stress management due to impaired activation of ART as well as enhanced ROS detoxification has decreased its clinical efficacy. This gap can be filled by development of alternative chemotherapeutic agents to combat resistance defense mechanism. Interestingly, repositioning of clinically approved drugs presents an emerging approach for expediting anti-malarial drug development and resistance management. Herein, we evaluated the anti-malarial potential of Nitrofurantoin (NTF), a clinically used antibacterial drug, against intra-erythrocytic stages of ART-sensitive (Pf3D7) and resistant (PfKelch13R539T) strains of Plasmodium falciparum (Pf), alone and in combination with ART. NTF exhibited growth inhibitory effect at sub micro molar concentration by arresting parasite growth at trophozoite stage. It also inhibited the survival of resistant parasites as revealed by ring survival assay. Concomitantly, in vitro combination assay revealed synergistic association of NTF with ART. NTF was found to enhance the reactive oxygen and nitrogen species as well as induced mitochondrial membrane depolarization in parasite. Furthermore, we found that exposure of parasites to NTF disrupted their redox balance by impeding Pf Glutathione Reductase activity, which manifests in enhanced oxidative stress, inducing parasite death. In vivo administration of NTF, alone and in combination with ART in P. berghei ANKA infected mice blocked parasite multiplication and enhanced mean survival time. Overall, our results indicate NTF as a promising repurposable drug with therapeutic potential against drug sensitive as well as resistant parasites.

pharmacology and toxicology↗