bioRxiv · 10.1101/2022.06.21.497065
The nuclear GAPDH-HMGB cascade in cortical microglia regulates cognitive flexibility
Abstract
We report a mechanism that underlies stress-induced cognitive inflexibility at the molecular level. In a mouse model under subacute stress in which deficits in rule shifting tasks were elicited, the nuclear glyceraldehyde dehydrogenase (N-GAPDH) cascade was activated specifically in microglia in the prelimbic cortex. The cognitive deficits were normalized with a pharmacological intervention with a compound (the RR compound) that selectively blocked the initiation of N-GAPDH cascade without affecting glycolytic activity. The normalization was also observed with a microglia-specific genetic intervention targeting the N-GAPDH cascade. Furthermore, hyperactivation of the prelimbic layer 5 excitatory neurons, which are known to be a neuronal substrate of cognitive inflexibility, was also normalized by the pharmacological and microglia-specific genetic interventions. The RR compound may offer a mechanism-driven, translational opportunity against stress-induced cognitive inflexibility. Taken together, we show a pivotal role of cortical microglia and microglia-neuron interaction in stress-induced cognitive inflexibility. We underscore the N-GAPDH cascade in microglia, which causally mediates stress-induced cognitive alteration.
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Ramos, A., Ishizuka, K., Namkung, H., Hayes, L. N., Saito, A., Sengupta, A., Srivastava, R., Calva, C., Hayashida, A., Elkins, N., Palen, T., Carloni, E., Tsujimura, T., Gallego, J. A., Robinson, D. G., Malhotra, A. K., Ikemoto, S., Rais, R., Slusher, B. S., Niwa, M., Saitoh, T., Takimoto, E., Sawa, A.. 2022-06-21. The nuclear GAPDH-HMGB cascade in cortical microglia regulates cognitive flexibility. https://doi.org/10.1101/2022.06.21.497065
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