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Biology subjects

Webb, H.

Publications and source records attributed to Webb, H..

4 recordsLinked to original sources

An African trypanosome surface protein inhibits amplification of the complement system

African trypanosomes replicate within the blood and tissue spaces of their mammalian hosts. As extracellular pathogens, they are constantly exposed to immune cells and molecules and are susceptible to killing by components of the complement system. In this study, we conducted a large-scale screen of a panel of human complement components against a set of putative T. brucei surface proteins and discovered a novel T. brucei receptor that binds to complement Factor B. Biochemical and structural characterisation of this protein revealed it to be a potent inhibitor of the C3bBb convertase, a central enzyme in amplification of the complement cascade. Structural studies show that this C3bBb receptor bridges C3b and Bb in a conformation which is incompatible with its catalytic activity, directly blocking C3bBb convertase function. This reveals a novel mechanism of C3bBb convertase regulation and deepens insight into how the African trypanosome cell surface has evolved to evade complement-mediated killing.

immunology↗

A Trypanosoma brucei gambiense gene variant confers human serum resistance

Most species of African trypanosomes cannot infect humans due to the presence in our blood of trypanolytic factors (TLFs). These lipoprotein particles contain the apolipoprotein L1 (ApoLI) toxin which, when internalised by trypanosomes, forms pores and causes cell death. However, two subspecies of Trypanosoma brucei have evolved resistance to TLFs and cause Human African Trypanosomiasis (HAT). The mechanism of resistance of T. b. rhodesiense requires a single additional molecule, the serum resistance associated protein SRA. However, the mechanism of resistance of T. b. gambiense, which causes HAT in West Africa, has not been fully understood. Here we identify a single polymorphic variant of a PLAC8-domain containing protein which is required for human serum resistance and call this T. b. gambiense-specific resistance variant, TgsRV. African trypanosomes are coated with a dense layer of many copies of one member of the variant surface glycoprotein protein family (VSGs). For cells expressing some VSGs, TgsRV is sufficient for human serum resistance, while cells which express other VSGs require a second protein, TgsGP in addition to TgsRV. We therefore complete the identification of the molecular players required for human serum resistance by the African trypanosomes.

microbiology↗

RUNX1 aberrations in blast-phase CML induce the RBP SPATS2L which promotes growth, survival and stress granule assembly

The RUNX1 transcription factor is a critical regulator of hematopoiesis and frequently mutated in myeloid malignancies. In the myeloproliferative neoplasm, chronic myeloid leukemia (CML), secondary somatic RUNX1 mutations and RUNX1::MECOM/EVI1, are associated with tyrosine kinase inhibitor (TKI) resistance and progression to the blast-phase (BP-CML). Research has predominantly focussed on transcriptional dysregulation mediated by RUNX1 mutations in myeloid malignancies, whilst post-transcriptional dysregulation remains comparatively unexplored. To address this, we used orthogonal organic phase separation (OOPS), to characterise the RNA-binding proteome of RUNX1 deficient BP-CML cells. RUNX1 depleted BP-CML cells exhibited significant alterations to RBP abundance involved in stress response pathways and translation/ribosome-biogenesis (RiBi). Furthermore, RUNX1 depletion or expression of RUNX1::EVI1 in BP-CML cells induced expression and RNA binding activity of SPATS2L, a component of stress granules (SG); membraneless cytoplasmic condensates protecting mRNAs from degradation, promoting survival under stress. Whilst RUNX1 depletion increased SG-assembly, SPATS2L depletion reduced SG-assembly in BP-CML cells and inhibited the growth and survival of multiple BP-CML cell lines. The translation inhibitor homoharringtonine (HHT), used historically in TKI-resistant CML, ablated SG-assembly in BP-CML cells with RUNX1 depletion, and, primary BP-CML cells with LOF/hypomorphic RUNX1 mutations (characterised by defective DNA-binding/CBF{beta}-interaction) were preferentially sensitised to HHT. Finally, suppressing SPATS2L expression induced by RUNX1 depletion, increased the HHT-sensitivity of RUNX1 depleted BP-CML cells, suggesting SPATS2L contributes to therapeutic resistance in CML with RUNX1 mutations. This study suggests that SPATS2L and SG induction could be critical to RUNX1-mutant leukemias, and, provides preliminary evidence for a mutationally-targeted approach in CML with RUNX1 aberrations.

cancer biology↗

Cell surface localisation of GPI-anchored receptors in Trypanosoma brucei

Trypanosoma brucei, the causal agent of Human and Animal African trypanosomiasis proliferates in the extracellular milieu of mammals. It acquires host macromolecular nutrients, by receptor mediated endocytosis. The best characterised cell surface receptor is for transferrin (TfR) and it has been reported to be preferentially localised in the flagellar pocket domain of the plasma membrane, the sole site of endocytosis. In this location the TfR may be inaccessible to adaptive immune system effectors. The T. brucei genome encodes [~]15 TfR variants, and here we compared two, the first attached to the plasma membrane by a single glycosylphosphatidylinositol (GPI)-anchor and the other by two. Transferrin uptake kinetics were similar and rapid for both. Unexpectedly, initial binding of transferrin occurred over the whole cell surface suggesting the TfR was not localised solely in the flagellar pocket. This localisation was confirmed by immunofluorescence assays and was independent of the number of GPI-anchors. Two other GPI-anchored receptors were investigated to determine whether localisation to the whole cell surface was a general property of GPI-anchored receptors. Haptoglobin-haemoglobin uptake assays and immunofluorescence localisation of complement factor H receptor showed both were also whole cell surface localised. The mechanisms by which trypanosome receptors are protected from antibody-mediated attack are more complex than hiding in a pocket.

microbiology↗