The fish pituitary directly responds to daylength and drives seasonality.

IF 3.5
Proceedings. Biological sciences Pub Date : 2025-10-01 Epub Date: 2025-10-08 DOI:10.1098/rspb.2025.1611
Stephen D McCormick, Daniel J Hall, Marty Kwok Shing Wong, Takehiro Tsukada, Björn Thrandur Björnsson
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Abstract

Seasonal timing is important for many critical life history events of organisms, and annual changes in daylength provide a reliable seasonal cue. In birds and mammals, photoperiod-driven seasonality is caused by changes in pituitary thyroid stimulating hormone (TSH), brain deiodinase (DIO) and triiodothyronine (T3), but it is unclear if a similar mechanism exists in fish. We used anadromous Atlantic salmon that migrate downstream and enter the ocean in spring to examine photoperiod signaling in fish. Manipulations of diurnal and circannual photoperiod cycles indicate that pituitary tshβb and brain dio2b transcription are long day signals that precede endocrine and physiological changes necessary for seawater entry. Exposure to long days caused increased dio2b transcription and T3 levels throughout the brain, and intracerebral T3 treatment resulted in elevated levels of plasma GH that drives migration physiology. Significant ambient light levels reach the pituitary, and transcription of non-visual opsins were found in the pituitary. The isolated (in vitro) pituitary directly responds to increased daylength with elevated tshβb transcription, the first time this has been shown in any animal. The results indicate that photoperiod-driven seasonality in fish is driven by direct light stimulation of the pituitary, expanding the known mechanisms of photoperiod responses in vertebrates.

鱼的脑下垂体直接对昼长作出反应,并驱动季节性。
季节时间对生物体的许多关键生活史事件都很重要,而日长每年的变化提供了可靠的季节线索。在鸟类和哺乳动物中,光周期驱动的季节性是由垂体促甲状腺激素(TSH)、脑去碘酶(DIO)和三碘甲状腺原氨酸(T3)的变化引起的,但尚不清楚鱼类中是否存在类似的机制。我们使用在春季向下游迁徙并进入海洋的溯河大西洋鲑鱼来研究鱼类的光周期信号。对日和年际光周期的操纵表明,垂体tshβb和脑dio2b转录是在进入海水所需的内分泌和生理变化之前的长日信号。长时间暴露导致整个大脑的dio2b转录和T3水平增加,脑内T3治疗导致血浆GH水平升高,从而驱动迁移生理。显著的环境光水平到达垂体,在垂体中发现非视觉视蛋白的转录。分离的(体外)垂体直接响应白昼长度的增加,升高tshβb转录,这是首次在任何动物中显示。结果表明,鱼类的光周期驱动的季节性是由垂体的直接光刺激驱动的,扩展了脊椎动物光周期反应的已知机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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