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Hood, R. J.

Publications and source records attributed to Hood, R. J..

3 recordsLinked to original sources

A mouse model of hemochromatosis-related mutations with brain iron dyshomeostasis exhibits loss of tyrosine hydroxylase expression in dopaminergic neurons and motor control impairment relevant to Parkinson's disease

UK Biobank studies show Parkinsons disease risk is almost doubled in men homozygous for the homeostatic iron regulator gene HFE p.C282Y polymorphism, associated with the common genetic iron disorder hemochromatosis. Whether this relationship is causal or spurious is unknown. We previously reported a novel Hfe-/-xTfr2mut mouse model of hemochromatosis with elevated brain iron ([~]1.5-1.8x). We now show these mice have reduced substantia nigra tyrosine hydroxylase expression at 3 months and 9 months age, sometimes exhibit severe hindlimb clasping by 7-8 months, have impaired rotarod and balance beam performance at 9 months and are untestable on the pole test. These parkinsonian features place the model at the forefront of genetic mouse models of PD, which generally do not show both TH loss and motor impairment. This confirms hemochromatosis-related mutations can cause parkinsonian features, substantiating causality of epidemiological relationships. Despite total brain iron elevation, neuronal iron remains low in Hfe-/-xTfr2mut mice, consistent with hemochromatosis-related mutations disrupting the normal, iron-responsive regulation of the neuronal iron exporter ferroportin by hepcidin. Parkinsonian features may reflect reduced mitochondrial respiratory complex (MRC) activity due to functional neuronal iron depletion. This may be exacerbated by indiscriminate chelation and could instead respond to drugs targeting the hepcidin-ferroportin axis or MRC activity. This new model of chronic parkinsonism that increases with age provides unprecedented insights into the complex relationships of brain iron regulation and movement impairment. Since parkinsonism of diverse etiologies can exhibit iron dysregulation, the model may facilitate pre-clinical to end-stage studies relevant to both sporadic and genetic PD.

neuroscience↗

Shear stress targeted delivery of nitroglycerin to brain collaterals improves ischaemic stroke outcome

In patients with ischaemic stroke, retrograde perfusion of the penumbra by the leptomeningeal collateral vessels (LMCs) is a strong predictor of clinical outcome, thus raising the possibility that enhancing LMC flow could offer a novel therapeutic approach. Here, using computational modelling we show that LMCs experience elevated fluid shear stress that is significantly higher than that in other blood vessels during ischaemic stroke in animals and humans. We take advantage of this to selectively enhance flow in LMCs using shear-activated nanoparticle aggregates carrying the vasodilator nitroglycerin (NG-NPAs) that specifically release drug in regions of vessels with high shear stress ([≥]100 dyne/cm2). The NG-NPAs significantly increased LMC-mediated penumbral perfusion, decreased infarct volume, and reduced neurological deficit without altering systemic blood pressure in a rat ischaemic stroke model. The NG-NPAs also did not cause known common side effects of systemic nitrate administration, such as systemic hypotension, cerebral vascular steal, cortical vein dilation, or intracranial pressure elevation. Systemic administration of free NG at the maximal tolerated dose, which was ten times higher than the dose of NG used in the NG-NPAs, did not enhance LMC perfusion and dropped blood pressure. Thus, packaging NG within shear-activated NPAs can potentially enable this widely available vasodilator to become a highly effective therapeutic for ischaemic stroke.

physiology↗

Leakage beyond the primary infarction: A temporal analysis of cerebrovascular dysregulation at sites of hippocampal secondary neurodegeneration following cortical photothrombotic stroke

We have previously demonstrated that a cortical stroke causes persistent impairment of hippocampal-dependent cognitive tasks concomitant with secondary neurodegenerative processes such as amyloid-{beta} accumulation in the hippocampus, a region remote from the primary infarct. Interestingly, there is emerging evidence suggesting that deposition of amyloid-{beta} around cerebral vessels may lead to cerebrovascular structural changes, neurovascular dysfunction, and disruption of blood-brain barrier integrity. However, there is limited knowledge about the temporal changes of hippocampal cerebrovasculature after cortical stroke. In the current study, we aimed to characterise the spatiotemporal cerebrovascular changes after cortical stroke. This was done using the photothrombotic stroke model targeting the motor and somatosensory cortices of mice. Cerebrovascular morphology as well as the colocalization of amyloid-{beta} with vasculature and blood-brain-barrier integrity were assessed in the cortex and hippocampal regions at 7, 28 and 84 days post-stroke. Our findings showed transient cerebrovascular remodelling in the peri-infarct area up to 28 days post-stroke. Importantly, the cerebrovascular changes were extended beyond the peri-infarct region to the ipsilateral hippocampus and were sustained out to 84 days post-stroke. When investigating vessel diameter, we showed a decrease at 84 days in the peri-infarct and CA1 regions that was exacerbated in vessels with amyloid-{beta} deposition. Lastly, we showed sustained vascular leakage in the peri-infarct and ipsilateral hippocampus, indicative of a compromised blood-brain-barrier. Our findings indicate that hippocampal vasculature may represent an important therapeutic target to mitigate the progression of post-stroke cognitive impairment.

neuroscience↗