Brain-wide input-output analysis of tuberal nucleus somatostatin neurons reveals hierarchical circuits for orchestrating feeding behavior.

Senol, Esra; Wang, Menghan; Xin, Yongjuan; Jiao, Zhuolei; Mohammad, Hasan; Yeo, Xin Yi; Si, Tengxiao; Young, David M et al. · Nat Commun · 2025

basic_science · Level V

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Abstract

Feeding is an innate behavior critical for survival but is also influenced by many non-nutritional factors such as emotion, social context and environmental conditions. Recently, tuberal nucleus somatostatin (<sup>TN</sup>SST) neurons have been identified as a key feeding regulation node. To gain a deeper understanding of the <sup>TN</sup>SST neural networks, we quantitatively characterised the brain-wide input-output configuration of mice <sup>TN</sup>SST neurons using the VITALISTIC method (Viral Tracing Assisted by Light-Sheet microscope and Tissue Clearing) and single-cell projectomes by fluorescence micro-optical sectioning tomography (fMOST). We found that <sup>TN</sup>SST neurons receive direct inputs from and send outputs to a broad range of brain regions, including many cortical and subcortical areas. Differently from AgRP neurons, the extensively studied 'hunger' neurons, <sup>TN</sup>SST neurons receive more diverse inputs from extra-hypothalamic regions and neuromodulatory centers. Using the projection-specific input tracing, we further revealed fine-tuning of the input-output configuration of <sup>TN</sup>SST neurons that align with specific functional needs.

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