A midbrain circuit mechanism for noise-induced negative valence coding.

Zhou, Siyao; Zhu, Yuebin; Du, Ana; Niu, Shuai; Du, Yonglan; Yang, Yan; Chen, Wenqiang; Du, Siyu et al. · Nat Commun · 2025

basic_science · Level V

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Abstract

Unpleasant sounds elicit a range of negative emotional reactions, yet the underlying neural mechanisms remain largely unknown. Here we show that glutamatergic neurons in the central inferior colliculus (CIC<sup>glu</sup>) relay noise information to GABAergic neurons in the ventral tegmental area (VTA<sup>GABA</sup>) via the cuneiform nucleus (CnF), encoding negative emotions in mice. In contrast, the CIC<sup>glu</sup>→medial geniculate (MG) canonical auditory pathway processes salient stimuli. By combining viral tracing, calcium imaging, and optrode recording, we demonstrate that the CnF acts downstream of CIC<sup>glu</sup> to convey negative valence to the mesolimbic dopamine system by activating VTA<sup>GABA</sup> neurons. Optogenetic or chemogenetic inhibition of any connection within the CIC<sup>glu</sup>→CnF<sup>glu</sup> → VTA<sup>GABA</sup> circuit, or direct excitation of the mesolimbic dopamine (DA) system is sufficient to alleviate noise-induced negative emotion perception. Our findings highlight the significance of the CIC<sup>glu</sup>→CnF<sup>glu</sup> → VTA<sup>GABA</sup> circuit in coping with acoustic stressors.

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