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Ambroziak, W.

Publications and source records attributed to Ambroziak, W..

2 recordsLinked to original sources

Thermally-induced neuronal plasticity that mediates heat tolerance

Heat acclimation is an adaptive process that improves physiological performance and supports survival in the face of increasing environmental temperatures. Understanding the underlying mechanisms holds potential to mitigate health risks and reduces the steadily increasing number of heat-related casualties associated with global warming. Here we report the identification of a discrete group of hypothalamic preoptic neurons that transform to rheostatically increase their activity over the course of heat acclimation, a property required for mice to become heat tolerant. Peripheral thermo-afferent pathways via the parabrachial nucleus activate preoptic neurons and mediate acute heat-defense mechanisms in non-acclimated animals. However, long-term heat exposure promotes the preoptic neurons to gain intrinsically warm-sensitive activity, independent of thermo-afferent parabrachial input. Our data shows that their newly gained cell-autonomous warm-sensitivity is required to recruit peripheral heat tolerance mechanisms in acclimated animals. Mechanistically, we find a combination of increased sodium leak current and enhanced utilization of the Nav1.3 ion channel to drive their pacemaker-like, warm-sensitive activity. We propose a salient neuronal plasticity mechanism, adaptively driving acclimation to promote heat tolerance. HighlightsO_LIHeat acclimation induces tonic, warm-sensitive firing in hypothalamic VMPO neurons C_LIO_LITonic activity in VMPO neurons primes peripheral organs to gain heat tolerance capacity C_LIO_LIWarm-sensitive tonic firing recruits heat tolerance mechanisms in acclimated animals C_LIO_LINaV1.3 persistent sodium currents drive tonic, warm-sensitive firing in VMPO neurons C_LI

neuroscience↗

Neuron-astrocyte metabolic coupling facilitates spinal plasticity and maintenance of persistent pain

Long-lasting pain stimuli can trigger maladaptive changes in the spinal cord, reminiscent of plasticity associated with memory formation. Metabolic coupling between astrocytes and neurons has been implicated in neuronal plasticity and memory formation in the CNS, but neither its involvement in pathological pain nor in spinal plasticity has been tested. Here, we report a novel form of neuroglia signaling involving spinal astrocytic glycogen dynamics triggered by persistent noxious stimulation via upregulation of the metabolic signaling molecule PTG exclusively in spinal astrocytes. PTG drove glycogen build-up in astrocytes, and blunting glycogen accumulation and turnover by Ptg gene deletion reduced pain-related behaviors and promoted faster recovery by shortening pain maintenance. Furthermore, mechanistic analyses revealed that glycogen dynamics is a critically required process for maintenance of pain by facilitating neuronal plasticity in spinal lamina 1 neurons. Finally, metabolic analysis indicated that glycolysis and lactate transfer between astrocytes and neurons fuels spinal neuron hyperexcitability. Spinal glycogen-metabolic cascades therefore hold therapeutic potential to alleviate pathological pain.

neuroscience↗