生物
睡眠(系统调用)
昼夜节律
计时型
微粒
基础(医学)
生物钟
褪黑素
DNA损伤
睡眠剥夺
神经科学
内分泌学
夜行的
清醒
内科学
平衡
水蚤
遗传学
DNA修复
细胞生物学
蛇床子属
睡眠障碍
睡眠开始
基因组不稳定性
水蛇许德拉
松果体
时间生物学
自由奔跑睡眠
动物
作者
Raphaël Aguillon,Amir Harduf,Dana Sagi,Noa Simon‐Blecher,Oren Levy,Lior Appelbaum
标识
DOI:10.1038/s41467-025-67400-5
摘要
Sleep is a conserved behavior across all animals with a nervous system, ranging from cnidarians to humans. Considering the survival risks, why sleep evolved in basal lineages and what essential benefits it provides to the simple nerve net of nocturnal and diurnal invertebrates remain elusive. We used behavioral criteria to empirically define sleep in the upside-down jellyfish Cassiopea andromeda and the starlet sea anemone Nematostella vectensis. Light and homeostasis were the primary drivers of sleep in C. andromeda, which slept at night and napped at midday in both the laboratory and the natural habitat. In contrast, both the circadian clock and homeostatic processes regulated sleep in N. vectensis, which increased sleep at dawn. Similar to humans, C. andromeda, wild-type (WT) and Clock mutant (NvClkΔ/Δ) N. vectensis slept about one-third of the day, irrespective of the daily timing and architecture of sleep, and melatonin promoted sleep in accordance with the species-specific chronotype. Notably, sleep deprivation, ultraviolet radiation, and mutagens increased neuronal DNA damage and sleep pressure, while spontaneous and induced sleep facilitated genome stability in both the diurnal and crepuscular cnidarians. These results suggest that DNA damage and cellular stress in simple nerve nets may have driven the evolution of sleep.
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