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Elley, M.

Publications and source records attributed to Elley, M..

2 recordsLinked to original sources

Synthetic torpor in the rat recapitulates key deatures of torpor and protects the heart from ischaemia-reperfusion injury

During times of environmental stress, many animals enter torpor: a reversible protective physiological state typically characterised by reductions in core temperature, heart rate and oxygen consumption. Species that naturally enter this hypothermic and hypometabolic state are tolerant of ischaemia-reperfusion injury. Consequently, there is a growing interest in utilizing aspects of torpor for clinical applications, such as protection from stroke or myocardial infarction. It is currently unknown, however, whether a torpor-like state is protective in animals that do not naturally enter torpor. Using viral vector-mediated chemogenetic activation of the medial preoptic area of the hypothalamus, we induced synthetic torpor in the rat, a species that does not naturally enter torpor. We demonstrate this state is cardioprotective in an ex vivo ischaemia-reperfusion injury model with an ~40% reduction in infarct size. Synthetic torpor-induced cardioprotection of the normothermic, isolated heart is not dependent on prior hypothermia in vivo. Phosphoproteomic analysis of cardiac tissue indicates the protective effects of synthetic torpor may be mediated by parallel activation of cell survival and stress tolerance pathways and inhibition of cell death pathways. These findings provide important insights into the mechanisms of organ protective effects of synthetic torpor states with implications for future clinical translation in humans.

neuroscience↗

Gamma frequency neuronal oscillations modulate microglia morphology via colony stimulating factor 1 receptor and NFκB pathway signalling

Within the brain, neurons and glial cells engage in dynamic crosstalk to maintain homeostasis and regulate neuroimmune responses. Recent studies have implicated rhythmic neuronal network activity, most notably at gamma oscillation frequencies (approx. 25-100 Hz), in modulating the morphology and function of microglia, the brains primary immune cells. Little is known, however, about the cellular mechanisms underlying this form of neuroimmune communication. Using pharmacological and optogenetic models of gamma oscillations in mouse brain slices, we found that gamma oscillations stimulate microglia to adopt a reactive morphological phenotype via activation of colony stimulation factor 1 receptor (CSF1R) and nuclear factor {kappa}B-mediated signalling. Surprisingly, inhibition of two downstream mediators of CSF1R signalling - phosphoinositide-3-kinase or phospholipase C - did not prevent this effect, suggesting that neuron-microglia interactions in this context may occur via compensatory or alternative CSF1R-linked pathways. These findings provide important insights into how rhythmic brain activity regulates neuroimmune function, with potential implications for neurological health and disease.

neuroscience↗