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Tagne, A. M.

Publications and source records attributed to Tagne, A. M..

2 recordsLinked to original sources

Metabolic reprogramming in the spinal cord drives the transition to pain chronicity

Acute injuries can progress into painful states that endure long after healing. The mechanisms underlying this transition remain unclear, but metabolic adaptations to the bioenergy demands imposed by injury are plausible contributors. Here we show that peripheral injury activates AKT/mTORC1 in afferent segments of the mouse spinal cord, redirecting local core metabolism toward biomass production while simultaneously suppressing autophagy-mediated biomass reclamation. This metabolic shift supports neuroplasticity, but creates a resource bottleneck that depletes critical spinal cord nutrients. Preventing this depletion with a modified diet normalizes biomass generation and autophagy and halts the transition to chronic pain. This effect, observed across multiple pain models, requires activation of the nutrient sensors, sirtuin-1 and AMPK, as well as restoration of autophagy. The findings identify metabolic reprogramming and consequent autophagy suppression as key drivers of the progression to pain chronicity and highlight nutritional and pharmacological interventions that could prevent this progression after surgery or other physical traumas.

neuroscience↗

Microglia Depletion Selectively Eliminates a Singular Form of Hippocampal Long Term Potentiation

There has been considerable recent interest in the possibility that microglia contribute to synaptic plasticity and some forms of learning. We report here that elimination of the cells in young adult male mice with a 7-12 day treatment with an antagonist (PLX5622) of the colony stimulating factor 1 receptor causes a profound but highly selective impairment to long-term potentiation (LTP) expressed by lateral perforant path (LPP) synapses with the dentate gyrus. Input/output functions and frequency facilitation to repetitive stimulation were not measurably affected. Direct infusion of PLX5622 into slices from naiive mice did not reduce the magnitude of LPP-LTP. Microglial depletion had no detectable effect on LTP in either the medial perforant path input to the dentate gyrus or the Schaffer-commissural projections between fields CA3 and CA1. We conclude that microglia discretely regulate the unusual form of LTP expressed by the LPP and thus exert region-specific effects on circuit function within hippocampus.

neuroscience↗