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Govender, K. K.

Publications and source records attributed to Govender, K. K..

2 recordsLinked to original sources

Structural Basis of Glycolytic Control in Trypanosoma cruzi: Insights from Enolase and PGI

Trypanosoma cruzi, the etiological agent of Chagas disease, depends on glycolysis for ATP production, rendering its glycolytic enzymes attractive targets for therapeutic development. Here, we report the high-resolution crystal structures of two essential glycolytic enzymes, glucose-6-phosphate isomerase (Tc PGI, 1.8 [A]) and enolase (Tc enolase, 2.4 [A]) and provide structural and computational analyses to support structure-based drug design. Tc PGI adopts a dimeric {beta} sandwich fold and features a parasite-specific 53-residue N-terminal extension and a unique C-terminal hook region which both distinguish it from its human ortholog. Tc enolase exhibits the conserved (/{beta}) 8 TIM barrel fold but harbors minor distinct structural deviations, including an extended 17 helix and a structured 1 region, which differentiate it from human isoforms. Both enzymes exhibited high thermal stability, consistent with adaptation to the parasites complex life cycle. Structure-based virtual screening using a scaffold with known multi-target potential identified distinct high-affinity inhibitors for each enzyme. Molecular dynamics simulations further confirmed stable enzyme-inhibitor interactions and favorable binding energetics. Collectively, these findings reveal structural signatures unique to T. cruzi glycolytic enzymes and lay the groundwork for the development of selective antiparasitic therapeutics.

biochemistry↗

The Computational Analysis of Plasmodium falciparum Heat Shock Proteins Reveals an Interplay with Polyamines

The current drugs available in the market are not effective due to growing numbers of resistance to the causative agent of malaria. There are various Plasmodium parasites, of which Plasmodium falciparum is the main cause of morbidity and mortality reported worldwide. Therefore, there is an urgent need to come up with an innovative and effective treatment for this disease. Polyamines play a major role in the parasites well-being and growth, while heat shock proteins keep the proteomics of the parasite in good shape. In this study, In Silico analysis of the interaction between putrescine, spermidine, spermine, and heat shock proteins was carried out to establish the binding site for drug discovery. Computational tools such as Bioedit, PROCHECK, KNIME Hub, and Schrodinger were used. The results revealed interactions between polyamines and heat shock proteins with glutamine and aspartic acid being common amino acids where interaction occurs between the chaperones and polyamines. MD shows a strong interaction between PfHsp70-1 and putrescine, but the best interaction is observed for PfHsp70-1 and spermidine. Based on these results, a follow-up study will be conducted to establish the synthesis of drugs that will be used as targets for both polyamines and heat shock proteins to eradicate malaria. Authors summaryThe emanation and spread of Plasmodium parasites that are resistant to antimalarial therapy is one of the main problems in the treatment of malaria. This is a result of the Plasmodium parasites ongoing evolution and the creation of novel strategies for surviving drug toxicity. Studies of antimalarial drug development have been focused on polyamine biosynthesis by targeting precursors such as ornithine decarboxylase, adenosylmethionine decarboxylase, and spermidine synthase and protein-protein interactions between Plasmodium falciparum chaperones spotting out Hsp90, Hsp70, and Hsp40 as potential targets with little attention being paid to the interaction between polyamines and molecular chaperones. Therefore, to study these interactions the binding sites of all 3D structures were identified using SiteMap, and a docking was performed using the Schrodinger software with OPLS4 force field and XP.

bioinformatics↗