...
首页> 外文期刊>Journal of biological rhythms >Functional Contributions of Strong and Weak Cellular Oscillators to Synchrony and Light-shifted Phase Dynamics
【24h】

Functional Contributions of Strong and Weak Cellular Oscillators to Synchrony and Light-shifted Phase Dynamics

机译:强而弱的细胞振荡器对同步和光移相动力学的功能贡献

获取原文
获取原文并翻译 | 示例
   

获取外文期刊封面封底 >>

       

摘要

Light is the primary signal that calibrates circadian neural circuits and thus coordinates daily physiological and behavioral rhythms with solar entrainment cues. Drosophila and mammalian circadian circuits consist of diverse populations of cellular oscillators that exhibit a wide range of dynamic light responses, periods, phases, and degrees of synchrony. How heterogeneous circadian circuits can generate robust physiological rhythms while remaining flexible enough to respond to synchronizing stimuli has long remained enigmatic. Cryptochrome is a short-wavelength photoreceptor that is endogenously expressed in approximately half of Drosophila circadian neurons. In a previous study, physiological light response was measured using real-time bioluminescence recordings in Drosophila whole-brain explants, which remain intrinsically light-sensitive. Here we apply analysis of real-time bioluminescence experimental data to show detailed dynamic ensemble representations of whole circadian circuit light entrainment at single neuron resolution. Organotypic whole-brain explants were either maintained in constant darkness (DD) for 6 days or exposed to a phase-advancing light pulse on the second day. We find that stronger circadian oscillators support robust overall circuit rhythmicity in DD, whereas weaker oscillators can be pushed toward transient desynchrony and damped amplitude to facilitate a new state of phase-shifted network synchrony. Additionally, we use mathematical modeling to examine how a network composed of distinct oscillator types can give rise to complex dynamic signatures in DD conditions and in response to simulated light pulses. Simulations suggest that complementary coupling mechanisms and a combination of strong and weak oscillators may enable a robust yet flexible circadian network that promotes both synchrony and entrainment. A more complete understanding of how the properties of oscillators and their signaling mechanisms facilitate their distinct roles in light entrainment may allow us to direct and augment the circadian system to speed recovery from jet lag, shift work, and seasonal affective disorder.
机译:光是校准昼夜节律神经回路的主要信号,因此可以与太阳夹带信号协调日常的生理和行为节律。果蝇和哺乳动物的昼夜节律电路由各种各样的细胞振荡器组成,这些细胞振荡器表现出广泛的动态光响应,周期,相位和同步度。异类生物节律如何在保持足够柔韧性以响应同步刺激的同时,能够产生健壮的生理节律,长期以来一直是个谜。隐色染料是一种短波感光体,在果蝇的昼夜节律神经元的大约一半内源性表达。在先前的研究中,使用果蝇全脑外植体中的实时生物发光记录来测量生理光响应,这些记录本质上仍然对光敏感。在这里,我们应用实时生物发光实验数据进行分析,以显示在单个神经元分辨率下整个昼夜节律电路光夹带的详细动态整体表示。将器官型全脑外植体在恒定的黑暗环境(DD)中放置6天,或在第二天暴露于相位超前的光脉冲下。我们发现,较强的昼夜节律振荡器在DD中支持稳健的整体电路节奏,而较弱的振荡器可以被推向瞬态失步和衰减幅度,以促进相移网络同步的新状态。此外,我们使用数学模型来检查由不同振荡器类型组成的网络如何在DD条件下以及响应模拟光脉冲时产生复杂的动态信号。仿真表明,互补的耦合机制以及强振荡器和弱振荡器的组合可以实现既健壮又灵活的昼夜节律网络,从而促进同步性和夹带。对振荡器的特性及其信号传导机制如何促进它们在光夹带中的独特作用的更完整的理解,可能使我们能够指导和增强昼夜节律系统,以加快从时差,轮班工作和季节性情感障碍中恢复的速度。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号