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Goyal, B.

Publications and source records attributed to Goyal, B..

4 recordsLinked to original sources

A Poly(rC)-Binding Protein Mediates Iron Delivery to Ferritin in Anopheles stephensi

Iron homeostasis is essential for both the Plasmodium parasite and its hosts, the mosquito and human; however, the molecular mechanisms governing intracellular iron trafficking remain poorly understood. In mammals, poly(rC)-binding proteins (PCBPs) function as major iron chaperones by delivering Fe2+ to ferritin and other iron-dependent proteins, yet their role in insects has not been investigated. Here, we provide the first structural and functional characterization of the PCBP from a major malaria vector, Anopheles stephensi. Comparative structural and evolutionary analyses showed that insect PCBPs are most closely related to human PCBP3. Coordinated expression and co-localization of AsPCBP with ferritin following blood feeding suggested a conserved role in mosquito iron homeostasis. Functional analyses demonstrated that KH2-KH3 linker and KH3 domain of PCBP, plays an important role in the AsPCBP-ferritin interaction and that deletion of these regions, unexpectedly increased ferritin binding affinity but impaired iron delivery, indicating that these regions are dispensable for complex formation but essential for efficient iron transfer. Collectively, our results identify PCBP as a key component of mosquito iron homeostasis that could be exploited for the development of novel antimalarial strategies.

biochemistry↗

Mosquito-directed PROTACs to block malaria transmission

The mosquito stage of the Plasmodium falciparum life cycle is an attractive target for intervention since it is crucial for the sexual reproduction and transmission of parasites to human host. Mosquito determinants crucial for parasite infection and growth pose as lucrative targets for transmission blockers. Owing to the fact that p38 MAPK has role in immune response and vector competence, we have evaluated the potential of PROTAC molecule (NR-7h) to degrade Anopheles stephensi p38 MAPK (Asp38 MAPK), a conserved serine/threonine kinase involved in stress reactions, midgut homeostasis, and parasite survival. PROTAC-mediated degradation of Asp38 MAPK led to the disrupted development of the parasite, suggesting its crucial function in vector competence. Furthermore, NR-7h-treated mosquitoes showed higher expression of immune genes such Rel-2, TEP1, APL1, and NOS, suggesting that p38 MAPK regulates host immunity in a way that promotes parasite persistence. PROTAC-mediated degradation of target proteins, provides a more persistent and resistance-proof therapeutic effect than traditional kinase inhibitors. Our findings establish PROTACs as a novel vector-targeted strategy for the development of endectocides to limit malaria transmission.

molecular biology↗

Mosquito Ferritin: A Haem-Binding Iron Store Required for Egg Development and Targetable for Malaria Control

Iron metabolism is essential for both mosquito reproductive fitness and Plasmodium development within the vector, yet this axis remains insufficiently explored as a potential target for malaria control. Ferritin, the major iron-storage protein and a central regulator of iron homeostasis, has not previously been biochemically or functionally characterized in any hematophagous insect. Our computational and phylogenetic analyses reveal that mosquito ferritin represents a unique case, combining conserved iron-binding motifs with distinctive haem-coordinating residues that confer an exceptionally high haem-binding affinity exceeding that of bacterioferritin. In addition, through a screen of multiple iron chelators in Anopheles larvae, we identified potent candidates with potential utility for vector control. Together, these findings establish mosquito ferritin as an evolutionarily distinct and physiologically essential protein, and they highlight iron homeostasis as a promising dual-target axis for next-generation vector control strategies.

biochemistry↗

Discovery and Synthesis of GS-7682, a Novel Prodrug of a 4'-CN-4-Aza-7,9-Dideazaadenosine C-Nucleoside with Broad-Spectrum Potency Against Pneumo- and Picornaviruses and Efficacy in RSV-Infected African Green Monkeys.

Acute respiratory viral infections (ARVI), such as pneumovirus and respiratory picornavirus infections, exacerbate disease in COPD and asthma patients. A research program targeting respiratory syncytial virus (RSV) led to the discovery of GS-7682 (1) a novel phosphoramidate prodrug of a 4'-CN-4-aza-7,9-dideazaadenosine C-nucleoside GS-646089 (2) with broad antiviral activity against RSV EC50 = 3-46 nM, human metapneumovirus (hMPV) EC50 = 210 {+/-} 50 nM, human rhinovirus (RV) EC50 = 54-61 nM, and enterovirus (EV) EC50 = 83-90 nM. Prodrug optimization for cellular potency and lung cell metabolism identified the 5-methyl((S)-hydroxy(phenoxy)phosphoryl)-L-alaninate in combination with 2,3-diisobutyrate promoieties as optimal for high intracellular triphosphate formation in vitro and in vivo. 1 demonstrated significant reductions of viral loads in the lower respiratory tract of RSV-infected African green monkeys when administered once daily via intratracheal nebulized aerosol. Together these finding support additional evaluation of 1 and its analogs as a potential therapeutic for pneumo- and picornaviruses.

biochemistry↗