Whole-brain, all-optical interrogation of neuronal dynamics underlying gut interoception in zebrafish

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An all-optical system revealed widespread neural activity across the zebrafish brain that encoded gut nutrient delivery and integrated it with motor and visual stimuli.

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The study investigated how brain-wide neuronal circuits in behaving larval zebrafish encode gut interoceptive signals and how these signals interact with sensorimotor processing. Using an all-optical system for whole-brain cellular imaging during optical uncaging of gut-targeted nutrients alongside visuo-motor stimulation, the authors found widespread neural activity across many peripheral and central brain regions that unfolded on multiple timescales and encoded nutrient delivery. Evoked responses depended on delivery location and nutrient type, occurring with amino acids and D-glucose but not L-glucose, and many gut-sensitive neurons also responded to swimming and visual stimuli, with brainstem regions integrating gut and motor signals and midbrain regions integrating gut and visual signals; the authors’ caveat is that the work addresses zebrafish gut interoception dynamics during specific experimental perturbations rather than a broader set of physiological contexts. This paper does not explicitly discuss endometriosis or adenomyosis; it was included in the corpus via a keyword match in the upstream search index.

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Abstract

Internal signals from the body and external signals from the environment are processed by brain-wide circuits to guide behavior. However, the complete brain-wide circuit activity underlying interoception—the perception of bodily signals—and its interactions with sensorimotor circuits remain unclear due to technical barriers to accessing whole-brain activity at the cellular level during organ physiology perturbations. We developed an all-optical system for whole-brain neuronal imaging in behaving larval zebrafish during optical uncaging of gut-targeted nutrients and visuo-motor stimulation. Widespread neural activity throughout the brain encoded nutrient delivery, unfolding on multiple timescales across many specific peripheral and central regions. Evoked activity depended on delivery location and occurred with amino acids and D-glucose, but not L-glucose. Many gut-sensitive neurons also responded to swimming and visual stimuli, with brainstem areas primarily integrating gut and motor signals and midbrain regions integrating gut and visual signals. This platform links body-brain communication studies to brain-wide neural computation in awake, behaving vertebrates.
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Abstract Internal signals from the body and external signals from the environment are processed by brain-wide circuits to guide behavior. However, the complete brain-wide circuit activity underlying interoception—the perception of bodily signals—and its interactions with sensorimotor circuits remain unclear due to technical barriers to accessing whole-brain activity at the cellular level during organ physiology perturbations. We developed an all-optical system for whole-brain neuronal imaging in behaving larval zebrafish during optical uncaging of gut-targeted nutrients and visuo-motor stimulation. Widespread neural activity throughout the brain encoded nutrient delivery, unfolding on multiple timescales across many specific peripheral and central regions. Evoked activity depended on delivery location and occurred with amino acids and D-glucose, but not L-glucose. Many gut-sensitive neurons also responded to swimming and visual stimuli, with brainstem areas primarily integrating gut and motor signals and midbrain regions integrating gut and visual signals. This platform links body-brain communication studies to brain-wide neural computation in awake, behaving vertebrates. Competing Interest Statement The authors have declared no competing interest.

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last seen: 2026-05-20T01:45:00.602351+00:00