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Duncan, S. M.

Publications and source records attributed to Duncan, S. M..

4 recordsLinked to original sources

Generation of a bloodstream form Trypanosoma brucei double glycosyltransferase null mutant competent in receptor-mediated endocytosis of transferrin

The bloodstream form of Trypanosoma brucei expresses large poly-N-acetyllactosamine (pNAL) chains on complex N-glycans of a subset of glycoproteins. It has been hypothesised that pNAL may be required for receptor-mediated endocytosis. African trypanosomes contain a unique family of glycosyltransferases, the GT67 family. Two of these, TbGT10 and TbGT8, have been shown to be involved in pNAL biosynthesis in bloodstream form Trypanosoma brucei, raising the possibility that deleting both enzymes simultaneously might abolish pNAL biosynthesis and provide clues to pNAL function and/or essentiality. In this paper, we describe the creation of a TbGT10 null mutant containing a single TbGT8 allele that can be excised upon the addition of rapamycin and, from that, a TbGT10 and TbGT8 double null mutant. These mutants were analysed by lectin blotting, glycopeptide methylation linkage analysis and flow cytometry. The data show that the mutants are defective, but not abrogated, in pNAL synthesis, suggesting that other GT67 family members can compensate to some degree for loss of TbGT10 and TbGT8. Despite there being residual pNAL synthesis in these mutants, certain glycoproteins appear to be particularly affected. These include the lysosomal CBP1B serine carboxypeptidase, cell surface ESAG2 and the ESAG6 subunit of the essential parasite transferrin receptor (TfR). The pNAL deficient TfR in the mutants continued to function normally with respect to protein stability, transferrin binding, receptor mediated endocytosis of transferrin and subcellular localisation. Further the pNAL deficient mutants were as viable as wild type parasites in vitro and in in vivo mouse infection experiments. Although we were able to reproduce the inhibition of transferrin uptake with high concentrations of pNAL structural analogues (N-acetylchito-oligosaccharides), this effect disappeared at lower concentrations that still inhibited tomato lectin uptake; i.e., at concentrations able to outcompete lectin-pNAL binding. Based on these findings, we recommend revision of the pNAL-dependent receptor mediated endocytosis hypothesis. Author SummaryBlood-stage trypanosome parasites have a specialised invagination on the cell surface named the flagellar pocket (FP), where invariant essential nutrient receptors are located. The pocket houses diverse proteins, including a transferrin receptor (TfR), which facilitates uptake of host transferrin-bound iron for survival. Several FP proteins, including TfR, are linked to complex sugar molecules (carbohydrates), the functions of which are not well understood. Complex carbohydrates are made by enzymes called glycosyltransferases (GTs) and previously we partially inhibited complex carbohydrate synthesis by deletion of either TbGT8 or TbGT10. However, mutant parasites lacking either one of these enzymes survived, suggesting functional redundancy. Here, we created a parasite mutant that lacks both TbGT8 and TbG10 to understand the combined effect of losing both enzymes. The mutant parasites showed a decreased ability to uptake tomato lectin, a protein that specifically binds to these sugar conjugates in the FP, indicating a reduction in carbohydrate complexity. Despite reduced complexity in the sugar structures attached to TfR, its critical function in transferrin/iron uptake remained effective. Furthermore, the mutants remained viable in culture and in animal models, challenging previous assumptions about the necessity and function of these carbohydrate conjugates. Our findings imply a greater flexibility and redundancy in the carbohydrate complex roles than previously appreciated.

molecular biology↗

Association of mitochondrial fucosyltransferase TbFUT1 with the assembly of the mitochondrial FoF1-ATP synthase in bloodstream form Trypanosoma brucei.

The gene TbFUT1 encodes an essential fucosyltransferase which, unexpectedly, localises to the mitochondrion of the protist parasite Trypanosoma brucei. The expression of TbFUT1 is required for the maintenance of mitochondrial membrane potential ({Psi}{Delta}m) in the bloodstream form (BSF) of the parasite, but the precise functions of TbFUT1 are unknown. Here, we demonstrate that depletion of TbFUT1 causes the accumulation of dyskinetoplastid cells; i.e., cells lacking concatenated complexes of mini- and maxicircle kinetoplast DNA (kDNA), the mitochondrial DNA of these organisms. Morphological analysis by serial face block-scanning electron microscopy showed that the dyskinetoplastid mitochondria were otherwise unperturbed with respect to structure and volume. Proteomics analyses showed that TbFUT1 depletion caused a decrease in the steady-state levels of several subunits of the Fo-subcomplex and peripheral stalk components of the mitochondrial FoF1-ATP synthase, as well as a pronounced reduction in mitochondrial ribosomal large subunit (LSU) proteins and more minor reduction in small subunit (SSU) proteins. TbFUT1 was rendered redundant with respect to cell survival and {Psi}{Delta}m generation upon F1-{gamma}WT/L262P mutation; a mutation that allows the generation of {Psi}{Delta}m in the absence of mitochondrial translation. Additionally, depletion of TbFUT1 no longer perturbs kDNA replication in these cells, indicating that dyskinetoplasty is a downstream consequence of impaired {Psi}{Delta}m. Depletion of TbFUT1 in wild type cells leads to the collapse of {Psi}{Delta}m via a functional FoF1-ATP synthase complex. We therefore conclude these mutants are inhibited in the synthesis of Fo-subcomplex components and, thus, impairing the assembly of functional FoF1-ATP synthase complexes. Curiously, mitochondrial transcript levels exhibit similar changes in abundance after FUT1 ablation in the parental and F1-{gamma}WT/L262P mutants. Further, the [~]5-fold overexpression of TbFUT1 in the TbFUT1 conditional knockout mutant under permissive conditions selectively inhibits the formation of the fully RNA-edited A6 transcript by an unknown mechanism, partially suppressing FoF1-ATP synthase assembly in these mutants. Together, these data suggest that mitochondrial fucosylation is essential for the assembly of protein complexes containing kDNA encoded subunits.

molecular biology↗

Identification of the glycosylphosphatidylinositol-specific phospholipase A2 (GPI-PLA2) of GPI fatty acid remodelling in Trypanosoma brucei

The biosynthesis of glycosylphosphatidylinositol (GPI) anchored proteins (GPI-APs) in the parasitic protozoan Trypanosoma brucei involves fatty acid remodelling of the GPI precursor molecules before they are transferred to protein in the endoplasmic reticulum. The genes encoding the requisite phospholipase A2 and A1 activities for this remodelling have thus far been elusive. Here, we identify a gene, Tb927.7.6110, that encodes a protein that is necessary and sufficient for GPI-phospholipase A2 (GPI-PLA2) activity in the procyclic form of the parasite. The predicted protein product belongs to the alkaline ceramidase, PAQR receptor, Per1, SID-1, and TMEM8 (CREST) superfamily of transmembrane hydrolase proteins and shows sequence similarity to Post-GPI-Attachment to Protein 6 (PGAP6), a GPI-PLA2 that acts after transfer of GPI precursors to protein in mammalian cells. The trypanosome Tb927.7.6110 GPI-PLA2 gene resides in a locus with two closely related genes Tb927.7.6150 and Tb927.7.6170, one of which (Tb927.7.6150) most likely encodes a catalytically inactive protein. The absence of GPI-PLA2 in the null mutant procyclic cells not only affected fatty acid remodelling but also reduced GPI anchor sidechain size on mature GPI-anchored procyclin glycoproteins. This reduction in GPI anchor sidechain size was reversed upon the add back of Tb927.7.6110 and of Tb927.7.6170, despite the latter not encoding GPI precursor GPI-PLA2 activity.

biochemistry↗

A UDP-GlcNAc : βGal β1-6 GlcNAc transferase involved in bloodstream form N-glycan and procyclic form GPI anchor elaboration in Trypanosoma brucei.

Trypanosoma brucei has large carbohydrate extensions on its N-linked glycans and glycosylphosphatidylinositol (GPI) anchors in its bloodstream form (BSF) and procyclic form (PCF), respectively. The parasites glycoconjugate repertoire suggests at least 38 glycosyltransferase (GT) activities, 16 of which are unknown. Here, we probe the function(s) of a putative {beta}3GT gene, TbGT10. The BSF null mutant is viable in vitro and in vivo and can differentiate into PCF, demonstrating non-essentiality. However, the absence of TbGT10 led to impaired elaboration of N-glycans and GPI anchor sidechains in BSF and PCF parasites, respectively. Glycosylation defects include reduced BSF glycoprotein binding to ricin and to monoclonal antibodies mAb139 and mAbCB1. The latter bind a carbohydrate epitope of lysosomal glycoprotein p67 that we show here, using synthetic glycans, consists of (-6Gal{beta}1-4GlcNAc{beta}1-)[≥] 4 poly-N-acetyllactosamine repeats. Methylation linkage analysis of Pronase glycopeptides isolated from BSF wild-type and TbGT10 null parasites show a reduction in 6-O-substituted- and 3,6-di-O-substituted-Gal residues. Together, these data suggest that TbGT10 encodes a UDP-GlcNAc : {beta}Gal {beta}1-6 GlcNAc-transferase active in both BSF and PCF life-cycle stages elaborating complex N-glycans and GPI sidechains, respectively. The {beta}1-6 specificity of this {beta}3GT gene product and its dual roles in N-glycan and GPI glycan elaboration are notable.

biochemistry↗