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Makde, R. D.

Publications and source records attributed to Makde, R. D..

2 recordsLinked to original sources

Recombinant Expression and Purification of Plasmodium Heme Detoxification Protein in E. coli: Challenges and Discoveries

1.2Heme, a toxic by-product of Plasmodiums proteolytic digestion of host hemoglobin, is detoxified by the malaria parasite through its conversion into hemozoin (Hz)--the malaria pigment. This detoxification pathway is a key target for many antimalarial drugs, which aim to induce heme-mediated toxicity to the parasite. The Heme Detoxification Protein (HDP) plays a central role in heme-to-Hz transformation; however, its precise mechanism remains unclear, largely due to the absence of successful recombinant expression in a native, soluble form. In this study, we aimed to express HDP recombinantly in its native soluble state using an E. coli-based system. A range of strategies were employed, including expression of orthologs, consensus sequence design, fusion to solubility-enhancing partners, co-expression with molecular chaperones, and extensive construct optimization through N-terminal truncations. Despite extensive efforts, most recombinant HDP constructs were either insoluble or formed soluble aggregates. Notably, only a single construct--with a 44-residue N-terminal truncation and a C-terminal 6His tag (HDPpf-C10)--was successfully expressed in a soluble form. Surprisingly, HDPpf-C10, although retaining domains implicated in heme binding and transformation, exhibited no detectable heme-to-Hz transformation activity. This finding highlights the essential role of the flexible-unstructured N-terminal region in mediating both heme binding and its subsequent conversion to Hz, providing new insights into HDP function and guiding future structural and mechanistic studies.

molecular biology↗

Revealing Chloroquine's Antimalarial Mechanism: The Suppression of Nucleation Events during Heme to Hemozoin Transformation

Malaria parasites generate toxic heme during hemoglobin digestion, which is neutralized by crystallizing into inert hemozoin ({beta}-hematin). Chloroquine blocks this detoxification process, resulting in heme-mediated toxicity in malaria parasites. However, the exact mechanism of chloroquines action remains unknown. This study investigates the impact of chloroquine on the transformation of heme into {beta}-hematin. The results show that chloroquine does not completely halt the transformation process but rather slows it down. Additionally, chloroquine complexation with free heme does not affect substrate availability or inhibit {beta}-hematin formation. SEM and XRD studies indicate that the size of {beta}-hematin crystal particles and crystallite increases in the presence of chloroquine, suggesting that chloroquine does not impede crystal growth. These findings suggest that chloroquine delays hemozoin production by perturbing the nucleation events of crystals and/or the stability of crystal nuclei. Thus, contrary to prevailing beliefs, this study provides a new perspective on the working mechanism of chloroquine.

biochemistry↗