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A study of cellular calcium dynamics in culture using fluorescence microscopy -- A statistical and mathematical approach.

机译:使用荧光显微镜对培养物中细胞钙动力学的研究-一种统计和数学方法。

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摘要

Calcium in its ionic form is very dynamic, especially in excitable cells such as muscle and brain cells, moving from the high concentration exterior of the cell to much lower concentrations inside the cell, where calcium is used as a second messenger. In brain cells, and neurons especially, calcium is a key signaling ion involved in memory and learning with excitatory neurotransmitters such as glutamate turning neurons "on." Glutamate excites the neurons in part by causing large and dynamic changes in the intracellular calcium concentration. While these dynamics are essential for normal signaling in the brain, excessive and sustained elevations in neuronal intracellular calcium are related to neuronal injury including long-term neurodegenerative processes. Helping to regulate these dynamics in the brain are the glial cells known as astrocytes. Astrocytes aids glutamate transporters, and in this way, diminish the time that neurons are exposed to glutamate, thus also shaping the calcium dynamics in neurons.;Here we describe an in vitro cell culture system composed of rat brain cortical neurons with different densities of astrocytes which we have used to statistically and mathematically analyze the intracellular calcium dynamics in individual neurons. With the proposed applied statistical and mathematical tools we now provide a system for predicting: 1) whether the order of repeated glutamate stimulation alters neuronal intracellular calcium dynamics and 2) how the presence of different densities of astrocyte modulates neuronal brain dynamics. We anticipate that this combined experimental/analytical approach will also have utility in understanding various brain diseases such as brain tumors.
机译:离子形式的钙非常动态,尤其是在诸如肌肉和脑细胞等可兴奋细胞中,从细胞外的高浓度移动到细胞内的低得多的浓度,在那里钙被用作第二信使。在脑细胞,特别是神经元中,钙是参与记忆和学习的关键信号离子,其中兴奋性神经递质(例如谷氨酸)使神经元“打开”。谷氨酸通过引起细胞内钙浓度的大而动态的变化而部分地刺激神经元。虽然这些动力学对于大脑中的正常信号传导至关重要,但神经元细胞内钙的过度和持续升高与神经元损伤(包括长期的神经退行性过程)有关。帮助调节大脑中这些动态的是称为星形胶质细胞的神经胶质细胞。星形胶质细胞协助谷氨酸转运蛋白,并以此方式减少神经元暴露于谷氨酸的时间,从而也塑造了神经元中的钙动力学。在这里,我们描述了一种体外细胞培养系统,该系统由具有不同密度星形胶质细胞的大鼠大脑皮质神经元组成我们已经用来统计和数学分析单个神经元的细胞内钙动力学。借助拟议的应用统计和数学工具,我们现在提供一种系统来预测:1)重复谷氨酸刺激的顺序是否会改变神经元细胞内钙动力学,以及2)不同密度的星形胶质细胞的存在如何调节神经元脑动力学。我们预计,这种组合的实验/分析方法也将有助于理解各种脑部疾病,例如脑瘤。

著录项

  • 作者

    Idowu, Richard Adekola.;

  • 作者单位

    Louisiana Tech University.;

  • 授予单位 Louisiana Tech University.;
  • 学科 Statistics.;Biology Bioinformatics.;Biology Biostatistics.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 194 p.
  • 总页数 194
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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