BMC Biology· 2026Q1
Parallel retinal and circadian signalling channels organise mouse hypothalamic activity
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- Q1SCImago
- 2026year
Short summary
Mouse hypothalamic subregions receive direct, light-dependent signals from the retina, in parallel to SCN-driven circadian rhythms, challenging the SCN-centric model of daily physiological control.
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Key points
- Hypothalamic cell populations receive both SCN-derived circadian and direct retinal signals.
- Retinal projections to the hypothalamus exhibit melanopsin-dominated visual responses.
- Discrete hypothalamic subregions are dominated by circadian, light, or combined signals.
- Light-dependent activity is extensive across the anterior midline hypothalamus.
AI-generated from the title and abstract; the full text is not read.
Abstract
Abstract Background Mammalian physiology exhibits pronounced daily changes, canonically under control of a primary clock in the suprachiasmatic nucleus (SCN). Retinal signals align robust diurnal rhythms in SCN output that are commonly viewed as acting to suppress daytime activity in hypothalamic effector sites regulating physiological state. The co-occurrence of retinal projections across such hypothalamic targets could also allow for more direct light-dependent increases in their activity, but the impact of such projections and how they combine with SCN-derived signals remains unexplored. Results We employ a combination of electrical and visual stimulation, in and ex vivo multielectrode recordings, c-Fos mapping and other neuroanatomical investigations to assess circadian and retinal influences on hypothalamic activity. We find a diversity of cell populations across the midline hypothalamus that receive SCN-derived inhibitory and/or excitatory responses of retinal origin and display divergent circadian activity patterns ex vivo. These properties align with the occurrence of melanopsin-dominated visual responses in vivo and the distribution of hypothalamic retinal projections. Accordingly, c-Fos mapping reveals discrete hypothalamic subregions dominated by circadian, light or both types of signals. Conclusions Together, our data establish surprisingly extensive light-dependent activity across the anterior midline hypothalamus that challenges an SCN-dominant model of daily physiological control and reveals potential new substrates for adaptive and disruptive effects of environmental light.
The authors' abstract, as published at the source. BMC Biology, 2026 · DOI ↗
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Field: Endocrine and Autonomic Systems
Endocrine and Autonomic SystemsNeuroscience