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Squair, D. R.

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

2 recordsLinked to original sources

Targeting a critical step in fungal hexosamine biosynthesis

Aspergillus fumigatus is a human opportunistic fungal pathogen with a cell wall that protects it from the extracellular environment. Chitin, an essential cell wall component, is synthesised from UDP-GlcNAc that is produced by the hexosamine biosynthetic pathway. Here, we provide genetic and chemical evidence that glucosamine 6-phosphate N-acetyltransferase (Gna1), a key enzyme in this pathway, is an exploitable antifungal drug target. Deletion of GNA1 results in loss of viability and disruption of the cell wall, phenotypes that can be rescued by the product of the enzyme. In a murine model of aspergillosis, the{Delta} gna1 mutant strain attenuates virulence. Using a fragment-based approach, we discovered a small heterocyclic scaffold that binds proximal to the active site and can be optimised to a selective sub-micromolar binder. Taken together, we have provided genetic, structural and chemical evidence for Gna1 as an antifungal target in Aspergillus fumigatus.

microbiology

Salt-inducible kinases (SIKs) regulate TGFβ-mediated transcriptional and apoptotic responses

AbstractThe signalling pathways initiated by members of the transforming growth factor-{beta} (TGF{beta}) family of cytokines control many metazoan cellular processes, including proliferation and differentiation, epithelial-mesenchymal transition (EMT), and apoptosis. TGF{beta} signalling is therefore strictly regulated to ensure appropriate context-dependent physiological responses. In an attempt to identify novel regulatory components of the TGF{beta} signalling pathway, we performed a pharmacological screen using a cell line engineered to report the endogenous transcription of the TGF{beta}-responsive target gene PAI-1. The screen revealed that small-molecular inhibitors of salt-inducible kinases (SIKs) attenuate TGF{beta}-mediated transcription of PAI-1 without affecting receptor-mediated SMAD phosphorylation, SMAD complex formation or nuclear translocation. We provide evidence that genetic inactivation of SIK isoforms also attenuates TGF{beta}-dependent transcriptional responses. Pharmacological inhibition of SIKs using multiple small-molecule inhibitors potentiated apoptotic cell death induced by TGF{beta} stimulation. Our data therefore provides evidence for a novel function of SIKs in modulating TGF{beta}-mediated transcriptional and cellular responses.

cancer biology