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THERM-D Uncovers Distinct Neural Mechanisms Separating Morning and Evening Body Temperature Rhythms in Drosophila

Goda, T.; Lopez, O. M.; Ramolete, R.; Reinhard, N.; Ulle, N.; Fukuda, A.; Umezaki, Y.; Rizvi, K.; Aikawa, M. G.; Catiis, R.; Marquez, V. Z.; Ngo, R.; Raj, N.; Fisher, C.; Bui, G. T.; Lee, J.; Helfrich-Forster, C.; Yoshii, T.; Hamada, F. N.

2026-02-20 neuroscience
10.64898/2026.02.19.706827 bioRxiv
Show abstract

Animal body temperature rises throughout the day and peaks in the evening, a pattern conserved across diurnal endotherms and ectotherms. However, the mechanisms driving the robust body temperature rhythms (BTR) remain largely unclear. Here, we developed a machine learning-based platform, temperature homeostasis evaluation of rhythmicity in model Drosophila (THERM-D), enabling continuous, high-throughput analyses of BTR. Using THERM-D, we identified robust BTR patterns reflecting flies morning and evening behaviors and revealed the function of CRYPTOCHROME (CRY)-negative clock neurons. About half of all clock neurons lack CRY, yet their function was unclear. Newly developed Gal4 drivers targeting CRY-negative neurons demonstrated that these neurons control the morning temperature rise without affecting evening BTR. The data suggests that separate clock circuits regulate morning and evening BTR. Thus, THERM-D elucidated the role of CRY-negative clock neurons, which are specialized for BTR regulation and distinct from the circuits controlling sleep-wake cycles.

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