Functional Analyses of Four Cryptochromes From Aquatic Organisms After Heterologous Expression in Drosophila melanogaster Circadian Clock Cells.

IF 2.9 3区 生物学 Q2 BIOLOGY Journal of Biological Rhythms Pub Date : 2024-08-01 Epub Date: 2024-03-28 DOI:10.1177/07487304241228617
Chenghao Chen, T Katherine Tamai, Min Xu, Libero Petrone, Paola Oliveri, David Whitmore, Ralf Stanewsky
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Abstract

Cryptochromes (Crys) represent a multi-facetted class of proteins closely associated with circadian clocks. They have been shown to function as photoreceptors but also to fulfill light-independent roles as transcriptional repressors within the negative feedback loop of the circadian clock. In addition, there is evidence for Crys being involved in light-dependent magneto-sensing, and regulation of neuronal activity in insects, adding to the functional diversity of this cryptic protein class. In mammals, Crys are essential components of the circadian clock, but their role in other vertebrates is less clear. In invertebrates, Crys can function as circadian photoreceptors, or as components of the circadian clock, while in some species, both light-receptive and clock factor roles coexist. In the current study, we investigate the function of Cry proteins in zebrafish (Danio rerio), a freshwater teleost expressing 6 cry genes. Zebrafish peripheral circadian clocks are intrinsically light-sensitive, suggesting the involvement of Cry in light-resetting. Echinoderms (Strongylocentrotus purpuratus) represent the only class of deuterostomes that possess an orthologue (SpuCry) of the light-sensitive Drosophila melanogaster Cry, which is an important component of the light-resetting pathway, but also works as transcriptional repressor in peripheral clocks of fruit flies. We therefore investigated the potential of different zebrafish cry genes and SpuCry to replace the light-resetting and repressor functions of Drosophila Cry by expressing them in fruit flies lacking endogenous cry function. Using various behavioral and molecular approaches, we show that most Cry proteins analyzed are able to fulfill circadian repressor functions in flies, except for one of the zebrafish Crys, encoded by cry4a. Cry4a also shows a tendency to support light-dependent Cry functions, indicating that it might act in the light-input pathway of zebrafish.

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来自水生生物的四种隐色体在黑腹果蝇昼夜节律钟细胞中异源表达后的功能分析
隐色体(Crys)是一类与昼夜节律钟密切相关的多方面蛋白质。研究表明,隐色体具有光感受器的功能,但也能在昼夜节律钟的负反馈环路中发挥不依赖于光的转录抑制作用。此外,有证据表明,Crys 还参与了昆虫中依赖光的磁感应和神经元活动的调控,从而增加了这一隐性蛋白类别的功能多样性。在哺乳动物中,Crys 是昼夜节律钟的重要组成部分,但它们在其他脊椎动物中的作用却不太清楚。在无脊椎动物中,Crys 既可以作为昼夜节律光感受器,也可以作为昼夜节律时钟的组成部分,而在某些物种中,光感受器和时钟因子的作用同时存在。在本研究中,我们调查了斑马鱼(Danio rerio)中 Cry 蛋白的功能,斑马鱼是一种表达 6 个 cry 基因的淡水远洋鱼类。斑马鱼的外周昼夜节律钟本质上对光敏感,这表明 Cry 蛋白参与了光复位。棘皮动物(Strongylocentrotus purpuratus)是唯一一类拥有对光敏感的果蝇Cry的直向同源物(SpuCry)的半脊椎动物,而Cry是光复位途径的重要组成部分,同时也是果蝇外周时钟的转录抑制因子。因此,我们通过在缺乏内源cry功能的果蝇中表达不同的斑马鱼cry基因和SpuCry,研究了它们取代果蝇Cry的光复位和抑制功能的潜力。利用各种行为和分子方法,我们发现除了由 cry4a 编码的一种斑马鱼 Cry 外,所分析的大多数 Cry 蛋白都能在果蝇体内发挥昼夜节律抑制功能。Cry4a 还显示出支持依赖光的 Cry 功能的趋势,表明它可能在斑马鱼的光输入途径中发挥作用。
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来源期刊
CiteScore
6.10
自引率
8.60%
发文量
48
审稿时长
>12 weeks
期刊介绍: Journal of Biological Rhythms is the official journal of the Society for Research on Biological Rhythms and offers peer-reviewed original research in all aspects of biological rhythms, using genetic, biochemical, physiological, behavioral, epidemiological & modeling approaches, as well as clinical trials. Emphasis is on circadian and seasonal rhythms, but timely reviews and research on other periodicities are also considered. The journal is a member of the Committee on Publication Ethics (COPE).
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