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Intrinsic and extrinsic regulation of pineal melatonin rhythms.

机译:松果体褪黑激素节律的内在和外在调节。

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摘要

Circadian rhythm is a biological rhythm with period of about 24 hours. Circadian rhythm is universal in phyla from bacteria to mammals and exists in different level from gene expression to behavior. Circadian system consists of three components: 1) a self-sustained oscillator; 2) an input pathway which can alter the phase of the oscillator; and 3) an output such as gene expression, enzyme activity, hormone production, heart rate, body temperature or locomotor activities. The way the oscillator regulates its outputs is complicated, in that on one hand usually the oscillator is not the only factor affecting the outputs, and on the other, the oscillator itself is incorporated in intricate pathways. Chicken pineal cell culture is a well-established in vitro model to study circadian rhythm. It contains a self-sustained oscillator which can be phase-shifted by light as input and rhythmically releases melatonin as an output. Here I have characterized the role of norepinephrine (NE), the sympathetic regulatory input of pineal gland, and the microenvironment of pineal cells in melatonin rhythmicity of cultured chicken pineal cells. Chapter 1 of this dissertation provides a review of circadian rhythm with a focus on melatonin regulation in pineal gland. Chapter 2 describes the methods to build up a fraction collector which offers high time resolution of sampling for a superfusion system. Chapter 3 is a technical report of a melatonin enzyme-linked immunosorbent assay suitable for high throughput measurement of melatonin. Chapter 4 presents data demonstrating that daily administration of NE recovers damped melatonin rhythm in constant darkness. In addition, NE does not change the expression of clock genes but the recovery effect of NE depends on the internal clock. Furthermore, the data indicates that NE administration stimulates the gene expression of phosphodiesterase 4D (PDE4D) and adenylate cyclase 1 (AC1) in a time order, potentially corresponding to the trough and peak of recovered melatonin rhythm. Chapter 5 presents data showing that the amplitude of melatonin rhythm in cultured pineal cells is affected by microenvironments of the cell culture and connexin plays a role in this effect. Finally, in Chapter 6 I discuss how the results of each chapter demonstrate multiple regulatory mechanism of the melatonin rhythm of chicken pineal cells. Furthermore, I discuss the implications of this work in the field of developmental biology and how the current data will shape future investigations.;My dissertation incorporates engineering, immunocytochemistry, chicken genetics, and biochemical analyses, and will help in better understanding the regulation mechanism of output in a circadian system.;KEYWORDS: Pineal; Melatonin; ELISA; Damping; Norepinephrine; Clock genes; cAMP signaling pathway; Adenylate cyclase; Connexin.
机译:昼夜节律是大约24小时的生物节律。从细菌到哺乳动物,昼夜节律在门上都很普遍,并且从基因表达到行为都有不同的水平。昼夜节律系统由三个部分组成:1)一个自持振荡器。 2)可以改变振荡器相位的输入路径; 3)输出,例如基因表达,酶活性,激素产生,心率,体温或运动活动。振荡器调节其输出的方式很复杂,一方面,振荡器通常不是影响输出的唯一因素,另一方面,振荡器本身也包含在复杂的路径中。鸡松果体细胞培养是研究昼夜节律的成熟体外模型。它包含一个自持振荡器,可以通过光作为输入进行相移,并有节奏地释放褪黑激素作为输出。在这里,我表征了去甲肾上腺素(NE),松果体的交感神经调节输入以及松果细胞微环境在培养的鸡松果细胞褪黑激素节律中的作用。本文的第一章综述了昼夜节律,重点研究了松果体中褪黑激素的调控。第2章介绍了构建馏分收集器的方法,该馏分收集器可为超融合系统提供高时间分辨率的采样。第3章是适用于高通量测定褪黑激素的褪黑素酶联免疫吸附测定的技术报告。第4章提供的数据表明,每天服用NE可以在持续黑暗中恢复褪黑激素的节律。另外,NE不会改变时钟基因的表达,但NE的恢复效果取决于内部时钟。此外,数据表明NE施用按时间顺序刺激磷酸二酯酶4D(PDE4D)和腺苷酸环化酶1(AC1)的基因表达,其可能对应于恢复的褪黑激素节律的谷和峰。第5章提供的数据表明,培养的松果细胞中褪黑激素节律的幅度受细胞培养的微环境影响,而连接蛋白在这种作用中起作用。最后,在第6章中,我讨论了每章的结果如何证明鸡松果细胞褪黑激素节律的多种调节机制。此外,我还讨论了这项工作在发育生物学领域中的意义以及当前的数据将如何影响未来的研究。;我的论文结合了工程学,免疫细胞化学,鸡遗传学和生化分析,将有助于更好地理解人类的调控机制。在昼夜节律系统中输出。褪黑激素; ELISA;阻尼去甲肾上腺素时钟基因; cAMP信号通路;腺苷酸环化酶;连接蛋白。

著录项

  • 作者

    Li, Ye.;

  • 作者单位

    University of Kentucky.;

  • 授予单位 University of Kentucky.;
  • 学科 Neurosciences.;Cellular biology.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 202 p.
  • 总页数 202
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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