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Madden, R.

Publications and source records attributed to Madden, R..

2 recordsLinked to original sources

Genome-wide subcellular protein localisation in the flagellate parasite Trypanosoma brucei

Trypanosoma brucei is a prototypical trypanosomatid, an important group of human, animal and plant unicellular parasites. Understanding their complex cell architecture and life cycle is hindered since, as with most eukaryotic microbes, [~]50% of the proteins encoded in the genome have completely unknown function. Using fluorescence microscopy and cell lines expressing endogenously tagged proteins we mapped the subcellular localisation of 89% of the proteome, giving clues to function, defining the lineage-specific organelle adaptations for obligate parasitism and mapping the ultra-conserved cellular architecture of eukaryotes. This includes the single flagellum, vital for morphogenesis and pathology: the first comprehensive cartographic analysis of the flagellum in any organism. To demonstrate the power of this resource, we identify novel specialisation of organelle molecular composition through the cell cycle and in specialised subdomains. This is a transformative resource, important for hypothesis generation for both eukaryotic evolutionary molecular cell biology and fundamental parasite cell biology.

microbiology↗

Hypoxia induced carbonic anhydrase mediated dorsal horn sensory neuron activation and induction ofneuropathic pain

Neuropathic pain such as that seen in diabetes mellitus, results in part from central sensitisation in the spinal cord dorsal horn. However, the mechanisms responsible for such sensitisation remain unclear. There is evidence that disturbances in the integrity of the spinal vascular network can be a causative factor in the development of neuropathic pain. Here we show that reduced blood flow and vascularity of the dorsal horn leads to the onset of neuropathic pain. Using rodent models (type 1 diabetes and an inducible endothelial specific vascular endothelial growth factor receptor 2 knockout mouse) that result in degeneration of the endothelium in the dorsal horn we show that spinal cord vasculopathy results in nociceptive behavioural hypersensitivity. This also results in increased hypoxia in dorsal horn sensory neurons, depicted by increased expression of hypoxia markers hypoxia inducible factor 1, glucose transporter 3 and carbonic anhydrase 7. Furthermore, inducing hypoxia via intrathecal delivery of dimethyloxalylglycine leads to the activation of dorsal horn sensory neurons as well as mechanical and thermal hypersensitivity. This shows that hypoxic signalling induced by reduced vascularity results in increased hypersensitivity and pain. Inhibition of carbonic anhydrase activity, through intraperitoneal injection of acetazolamide, inhibited hypoxia induced pain behaviours. This investigation demonstrates that induction of a hypoxic microenvironment in the dorsal horn, as occurs in diabetes, is an integral process by which sensory neurons are activated to initiate neuropathic pain states. This leads to the conjecture that reversing hypoxia by improving spinal cord microvascular blood flow could reverse or prevent neuropathic pain.

neuroscience↗