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Mayank, A. K.

Publications and source records attributed to Mayank, A. K..

3 recordsLinked to original sources

Identification of a Putative Metal Transporter in the Apicoplast of Malaria Parasites

Plasmodium falciparum malaria parasites harbor an essential plastid organelle, called the apicoplast, which produces key metabolites required for organelle function and parasite viability. Apicoplast functions depend on iron and other metals, but the membrane transporters that mediate metal import into this organelle have been challenging to identify. Tetracycline antibiotics, including doxycycline, specifically target the apicoplast and can exhibit metal-dependent activity. Using tetracycline-affinity proteomics, we identified a doxycycline-interacting, uncharacterized transmembrane protein (UCT) targeted to the apicoplast periphery but not proteolytically processed. Although lacking sequence similarity to proteins of known function, UCT has a predicted structure with high similarity to pentameric CorA-family metal transporters that mediate metal uptake in other organisms. Functional tests revealed that UCT is dispensable for blood-stage asexual parasites, suggesting that the apicoplast has evolved redundant mechanisms for metal uptake. UCT knockdown in gametocytes, however, impairs the development of sexual parasites, which are critical for mosquito transmission. Our study identifies an apicoplast membrane protein with localization and structural properties that predict a role in metal transport into this key organelle. This discovery can provide a biochemical springboard to unravel broader apicoplast mechanisms of metal uptake across multiple stages of parasite development, including mosquito-stage parasites that display heightened UCT expression.

biochemistry↗

EDC-3 and EDC-4 Regulate Embryonic mRNA Clearance and Biomolecular Condensate Specialization

Animal development is dictated by the selective and timely decay of mRNAs in developmental transitions, but the impact of mRNA decapping scaffold proteins in development is unknown. This study unveils the roles and interactions of the DCAP-2 decapping scaffolds EDC-3 and EDC-4 in the embryonic development of C. elegans. EDC-3 facilitates the timely removal of specific embryonic mRNAs, including cgh-1, car-1, and ifet-1 by reducing their expression, and preventing excessive accumulation of DCAP-2 condensates in somatic cells. We further uncover a novel role for EDC-3 in defining the boundaries between P-bodies, germ granules, and stress granules. Lastly, we show that EDC-4 counteracts EDC-3 and engenders the assembly of DCAP-2 with the GID (CTLH) complex, a ubiquitin ligase involved in maternal-to-zygotic transition (MZT). Our findings support a model wherein multiple RNA decay mechanisms temporally partake in the clearance of maternal and zygotic mRNAs throughout embryonic development.

molecular biology↗

SCF FBXL5 ubiquitin ligase regulates stability of von-Hippel Lindau protein and the HIF1α-dependent response to hypoxia

The canonical response to changes in cellular oxygen levels consists of the ubiquitin-dependent degradation of hypoxia-inducible transcription factors (HIFs) in a prolyl hydroxylase (PHD) and von-Hippel Lindau-ElonginB-ElonginC (VHL-ElonginBC) E3 ubiquitin ligase complex-dependent manner. This regulated degradation event is oxygen-dependent and results in activation of a transcriptional program that mediates the cellular adaptation to changes in oxygen tension. Here, we show that a distinct Cullin-RING ligase complex, SKP1-CUL1-FBXL5 (SCFFBXL5), physically associates with VHL and promotes its ubiquitin-dependent degradation during hypoxia. The regulation of VHL protein stability by FBXL5 influences HIF1 expression levels and the transcriptional activation of downstream hypoxia-responsive target genes. This work identifies a novel mechanism for VHL regulation which contributes to the HIF1-mediated cellular response to hypoxia and provides an additional layer of crosstalk between iron and oxygen homeostasis.

molecular biology↗