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c-Fos-MMP-9 pathway in central amygdala mediates approach motivation but not reward consumption

Lebitko, T.; Dzik, J.; Jedrzejewska-Szmek, J.; Chaturvedi, M.; Jaworski, T.; Nikolaev, T.; Meyza, K.; Kaczmarek, L.; Knapska, E.

2020-04-18 neuroscience
10.1101/2020.04.17.044792 bioRxiv
Show abstract

Although impaired motivational and consummatory aspects of reward behavior are core symptoms of several psychiatric disorders, the underlying neural and molecular mechanisms remain poorly understood. c-Fos, as a component of AP-1 transcription factor, regulates the expression of matrix metalloproteinase 9 (MMP-9), an enzyme involved in synaptic remodeling and plasticity. Both proteins are expressed in the central amygdala (CeA) that orchestrates appetitive and aversive responses. We have examined the role of c-Fos and MMP-9 in CeA in reward and punishment processing. We have manipulated c-Fos and MMP-9 levels in vivo using: RNAi-based approach to block c-Fos expression, inhibitor-releasing nanoparticles to block MMP-9 activity, and lentiviral vector to increase MMP-9 expression. To assess motivation, consumption and learning reinforced by either a sweet or bitter-tasting solution, we employed automated behavioral tests in the IntelliCage cystem. We have used transgenic mouse lines to identify CeA cells expressing c-Fos and a specific fluorescently labelled substrate peptide to measure MMP-9 activity. Excitability of neurons was measured with patch-clamp. Blocking c-Fos expression has been found to disrupt both reward processing components, motivational and consummatory, while inhibition of MMP-9 activity has impaired only motivational aspects of the behavior. On the other hand, punishment processing has not been affected by those manipulations. Furthermore, we have observed that reward training induces c-Fos expression in both somatostatin (SST)+, and SST-neurons, while MMP-9 activity is increased in SST- subpopulation only. We have further linked SST+ population to consummatory reactions by showing that reward consumption increases excitability of the SST+ neurons. These findings reveal molecular mechanisms of motivational anhedonia, linking it to c-Fos-MMP-9 pathway and CeA SST- neurons, and consummatory anhedonia, linking it to c-Fos and CeA SST+ neurons.

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