Dysregulating mTORC1-4E-BP2 signaling in GABAergic interneurons impairs hippocampus-dependent learning and memory

  1. Nahum Sonenberg1,2
  1. 1Department of Biochemistry, McGill University, Montreal, Quebec, Canada H3G 1Y6
  2. 2Goodman Cancer Institute, Montreal, Quebec, Canada H3A 1A3
  3. 3Integrated Program in Neuroscience, McGill University, Montreal, Quebec, Canada H3A 2B4
  4. 4Department of Anaesthesia and Faculty of Dental Medicine and Oral Health Sciences, McGill University, Montreal, Quebec, Canada H3G 1Y6
  5. 5Department of Neuroscience and CIRCA, University of Montreal, Montreal, Quebec, Canada H3C 3J7
  1. Corresponding author: nahum.sonenberg{at}mcgill.ca
  1. 6 These authors contributed equally to this work.

Abstract

Memory formation is contingent on molecular and structural changes in neurons in response to learning stimuli—a process known as neuronal plasticity. The initiation step of mRNA translation is a gatekeeper of long-term memory by controlling the production of plasticity-related proteins in the brain. The mechanistic target of rapamycin complex 1 (mTORC1) controls mRNA translation, mainly through phosphorylation of the eukaryotic initiation factor 4E (eIF4E)-binding proteins (4E-BPs) and ribosomal protein S6 kinases (S6Ks). mTORC1 signaling decreases throughout brain development, starting from the early postnatal period. Here, we discovered that in mice, the age-dependent decrease in mTORC1 signaling occurs selectively in excitatory but not inhibitory neurons. Using a gene conditional knockout (cKO) strategy, we demonstrate that either up- or downregulating the mTORC1-4E-BP2 axis in GAD65 inhibitory interneurons, but not excitatory neurons, results in long-term object recognition and object location memory deficits. Our data indicate that the mTORC1 pathway in inhibitory but not excitatory neurons plays a key role in memory formation.

Footnotes

  • Received April 22, 2024.
  • Accepted September 15, 2024.

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