Abstract
Over the course of evolution, many species have adapted to the environmental conditions found at higher latitudes. This is likely also true of the circadian system, which regulates daily behavior and helps measure day length to facilitate adaptation to the seasons, though how the circadian clock adapts to latitude remains largely unknown. Here, we investigated daily activity patterns under long photoperiods and in constant darkness, as well as the underlying circadian clock network, in 52
Drosophila
species from around the world. We found a strong, significant positive correlation between the clock's plasticity, measured as the phase difference between morning and evening activity, and the average geographical latitude from which the species originate. The mechanisms underpinning this increase in plasticity differed between species: in the subgenus
Siphlodora
, the clock weakened with increasing latitude, accompanied by a reduction of the neuropeptide Pigment-Dispersing Factor in the small ventrolateral clock neurons (s-LN
v
), whereas in the subgenus
Drosophila
the opposite was true. The subgenus
Sophophora
, by contrast, showed a negative correlation between circadian plasticity and PDF levels in the s-LN
v
axons. These results suggest that Drosophila species have evolved diverse, independent strategies to adapt their circadian clock to higher latitudes.