Communications Biology· 2026Q1
Conserved circadian membrane rhythms arise from divergent cellular mechanisms in pacemaker neurons of mice and Drosophila
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- Q1SCImago
- 2026year
Short summary
Mouse SCN VIP neurons and Drosophila l-LNv PDF neurons, despite 700 million years of divergence and opposite temporal niches, exhibit conserved daily rhythms in resting membrane potential, firing rate, and capacitance.
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Key points
- Mouse SCN VIP and Drosophila l-LNv PDF neurons exhibit conserved daily rhythms in resting membrane potential, spontaneous firing rate, and cell capacitance.
- These conserved membrane properties arise from distinct cellular mechanisms in flies (higher input resistance, greater excitability, more A-type potassium currents) and mice (larger sustained outward currents, post-inhibitory rebound excitation).
- Rheobase troughs occur during the inactive phase in both species, while other parameters remain stable.
- These findings highlight evolutionary flexibility in the membrane basis of circadian timekeeping across species.
AI-generated from the title and abstract; the full text is not read.
Abstract
Abstract Circadian clocks align physiology and behaviour with daily environmental cycles, requiring neuronal networks that encode and transmit time-of-day information. Whether conserved electrophysiological principles underlie circadian output across evolution remains unclear. We compared the intrinsic electrophysiological properties of identified circadian neurons from a nocturnal mammal (mouse SCN VIP neurons) and a diurnal insect ( Drosophila l-LNv PDF neurons) across the 24-h light-dark cycle using harmonised electrophysiological recordings and matched analytical approaches. Despite ~700 million years of evolutionary divergence and opposite temporal niches, both neuron types exhibited similar rhythmic patterns in parameters, including resting membrane potential, spontaneous firing rate and cell capacitance, indicating a conserved pattern of daily excitability despite different network scales. These shared membrane properties arose through distinct mechanisms: flies exhibited higher input resistance, greater excitability and a greater relative contribution of A-type potassium currents, while mice displayed larger sustained outward currents and post-inhibitory rebound excitation, the latter absent in flies. Rheobase troughs occurred during the inactive phase in both species, while other parameters were stable. These differences likely shape how each neuronal type integrates inputs within its circadian circuits. Our findings reveal conserved functional outputs generated by divergent electrophysiological mechanisms, highlighting evolutionary flexibility in the membrane basis of circadian timekeeping.
The authors' abstract, as published at the source. Communications Biology, 2026 · DOI ↗
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Field: Endocrine and Autonomic Systems
Endocrine and Autonomic SystemsNeuroscience