在恒定的光线或黑暗下适应:对于松果来说是一个挑战
Alisa P Becin1, Milica Trkulja1, Aleksandra Bradasevic1
1Faculty of Sciences, Department of Biology and Ecology, Laboratory for Chronobiology and Aging, University of Novi Sad, Dositeja Obradovica, Sq 2, 21000, Novi Sad, Serbia.
概括
恒定的光线 (LL) 比恒定的黑暗 (DD) 更多地扰乱昼夜节律,影响松果腺功能,钟基因表达和线粒体活动. LL导致ATP和皮质的升高,表明显著的时代生物学压力.
科学领域:
- 时间生物学 时间生物学
- 内分泌学 在内分泌学.
- 分子生物学分子生物学
背景情况:
- 松果腺通过产生黑激素来调节昼夜节律,受光暗循环的影响.
- 这些节律的破坏会影响生理过程和整体健康.
研究的目的:
- 为了研究长时间恒定的光 (LL) 和恒定的黑暗 (DD) 对大鼠松果腺生理学的影响.
- 在LL和DD条件下分析与昼夜节律和线粒体功能相关的基因转录变化.
主要方法:
- 鼠被暴露在LL,DD或从P21到P90.0的明暗 (LD) 周期中.
- 监测自愿活动模式,血清黑激素水平,以及时钟基因,黑激素合成酶和上腺素受体的基因转录.
- 利用主要成分分析 (PCA) 来分析基因表达模式.
主要成果:
- 无论是LL还是DD都改变了活动模式,并破坏了黑色素和相关基因表达的昼间节律.
- LL减弱了核心时钟基因表达,而DD则改变了它们的表达峰值.
- 对LL的暴露增加了线粒体生物发生,线粒体和ATP的产生,同时增加了皮质.
- 暴露于DD导致ATP水平降低.
结论:
- 长期的LL暴露给松果腺功能带来了比DD更大的挑战.
- 昼夜钟与线粒体功能之间存在着强烈的关联,这是基因表达集群所表明的.
- 在LL中皮质的升高表明显著的时代生物学压力,影响松果生理学.
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