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Elevated synaptic PKA activity and abnormal striatal dopamine signaling in Akap11 mutant mice, a genetic model of schizophrenia and bipolar disorder

  • Bryan J Song*
  • , Yang Ge
  • , Ally Nicolella
  • , Min Jee Kwon
  • , Bart Lodder
  • , Kevin Bonanno
  • , Antia Valle-Tojeiro
  • , Nolan D Hartley
  • , Kira Perzel Mandell
  • , John Adeleye
  • , Deeksha Misri
  • , Chuhan Geng
  • , Sahana Natarajan
  • , Inès Picard
  • , Nate Shepard
  • , Alyssa Hall
  • , Jiawen Tian
  • , Sameer Aryal
  • , Zohreh Farsi
  • , Xiao-Man Liu
  • Nader Morshed, Naeem M Nadaf, Horia Pribiag, Sean K Simmons, D R Mani, Beth Stevens, Prabhat S Kunwar, Zhanyan Fu, Evan Z Macosko, Joshua Z Levin, Bernardo L Sabatini, Steven A Carr, Borislav Dejanovic, Hasmik Keshishian, Adam J Granger, Morgan Sheng*
*Corresponding author for this work

Research output: Contribution to journalArticleAcademicpeer-review

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Abstract

Loss-of-function mutations in AKAP11 (a protein kinase A (PKA)-binding protein) greatly increase the risk of bipolar disorder and schizophrenia. To determine the neurobiological functions of AKAP11, we conduct multi-omic and neurobiological analyses of Akap11 mutant mouse brains. We find that AKAP11 is a key regulator of PKA proteostasis in the brain whose loss leads to dramatically increased levels of PKA subunits and phosphorylated PKA substrates, especially in synapses. Akap11 mutant mice show extensive transcriptomic changes throughout the brain, including prominent decreases in synapse-related genes sets. Gene expression is highly impacted in spiny projection neurons of the striatum, a brain region implicated in motivation, cognition and psychotic disorders. Real-time measurements of PKA activity reveal elevated basal PKA activity in the striatum of Akap11-/- mice, with exaggerated additional response to dopamine receptor antagonists. Behaviorally, Akap11 mutant mice show abnormally prolonged locomotor response to amphetamine, deficits in associative learning and contextual discrimination, as well as depression-like behaviors. Our study connects molecular changes to circuit dysfunction and behavioral disturbance in a genetically valid animal model of psychotic disorder.

Original languageEnglish
Article number10793
JournalNature Communications
Volume16
Issue number1
DOIs
Publication statusPublished - 28 Nov 2025

Keywords

  • A Kinase Anchor Proteins/genetics
  • Animals
  • Bipolar Disorder/genetics
  • Corpus Striatum/metabolism
  • Cyclic AMP-Dependent Protein Kinases/metabolism
  • Disease Models, Animal
  • Dopamine/metabolism
  • Female
  • Male
  • Mice
  • Mice, Inbred C57BL
  • Mice, Knockout
  • Mutation
  • Schizophrenia/genetics
  • Signal Transduction
  • Synapses/metabolism

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