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Mashhour, N.

Publications and source records attributed to Mashhour, N..

2 recordsLinked to original sources

The gut-brain vagal axis governs mesolimbic dopamine dynamics and reward events

Reward-related processes have traditionally been ascribed to neural circuits centered on the dopamine (DA) system. While exteroceptive stimuli, such as food and drugs of abuse, are well-established activators of DA-neuron activity, growing evidence indicates that interoceptive signals also play a critical role in modulating reward. Among these, the gut-brain vagal axis has emerged as a key pathway, yet its precise contribution to mesolimbic DA-dependent signaling, dynamics and behaviors remains poorly defined. Here, we combine complementary ex vivo and in vivo approaches across multiple scales to investigate how the gut-brain vagal axis regulates DA dynamics and reward-related behaviors. We show that gut-brain vagal tone is essential for gating mesolimbic DA system activity and functions, modulating DA-dependent molecular and cellular processes, and scaling both food- and drugs-induced reinforcement. These findings challenge the traditional brain-centric view of reward processing, supporting a more unified and integrated model in which gut-derived and vagus-mediated interoceptive signals are pivotal in intrinsically shaping motivation and reinforcement. By uncovering the influence of gut-brain vagal communication on mesolimbic DA functions, this work offers new insights into the neurobiological mechanisms underlying both adaptive and maladaptive reward processes, with broad implications for eating disorders and addiction.

neuroscience↗

Midbrain dopamine D2R regulates the salience of threat-related events

Salience attributed to stimuli predicting rewarding or aversive outcomes is critical for adaptive behavior. Dopamine (DA)-neurons play a central role in this process by modulating responses to both rewarding and aversive cues. DA-neurons are tightly and readily modulated by DA D2 autoreceptors (autoD2Rs), but their role in regulating responses to aversive stimuli remains unclear. In this study, we investigated the role of autoD2R in regulating the activity of VTA DA-neurons in response to salient aversive stimuli. Using Drd2Slc6a3 mice, in which Drd2 is selectively deleted in DA-neurons, we observed enhanced excitatory and inhibitory responses of VTA DA-neurons to aversive stimuli, suggesting that autoD2R acts as a critical regulatory brake. Importantly, this modulation occurred independently of either the pacemaker activity of DA-neurons or their coupling to the non-selective sodium leak channel NALCN. Behaviorally, Drd2Slc6a3 male mice showed enhanced discrimination between threat-predicting and non-predicting cues that persisted during extinction learning, highlighting a sex-biased role of autoD2R in threat processing. Our results provide new mechanistic insights through which autoD2R influence behavioral responses to aversive stimuli, with implications for understanding neuropsychiatric disorders characterized by maladaptive threat processing.

neuroscience↗