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Composite mathematical modeling ofcalcium signaling behind neuronal cell death in Alzheimer's disease

机译:阿尔茨海默氏病神经元细胞死亡背后钙信号的综合数学建模

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Background: Alzheimer's disease (AD) is a progressive neurological disorder, recognized as the most common cause of dementia affecting people aged 65 and above. AD is characterized by an increase in amyloid metabolism, and by the misfolding and deposition of beta-amyloid oligomers in and around neurons in the brain. These processes remodel the calcium signaling mechanism in neurons, leading to cell death via apoptosis. Despite accumulating knowledge about the biological processes underlying AD, mathematical models to date are restricted to depicting only a small portion of the pathology.Results: Here, we integrated multiple mathematical models to analyze and understand the relationship among amyloid depositions, calcium signaling and mitochondrial permeability transition pore (PTP) related cell apoptosis in AD. The model was used to simulate calcium dynamics in the absence and presence of AD. In the absence of AD, i.e. without beta-amyloid deposition, mitochondrial and cytosolic calcium level remains in the low resting concentration. However, our insilico simulation of the presence ofAD with the beta-amyloid deposition, shows an increase in the entry of calcium ions into the cell and dysregulation of Ca~(2+) channel receptors on the Endoplasmic Reticulum. This composite model enabled us to make simulation that is not possible to measure experimentally.Conclusions: Our mathematical model depicting the mechanisms affecting calcium signaling in neurons can help understand AD at the systems level and has potential for diagnostic and therapeutic applications.
机译:背景:阿尔茨海默病(AD)是一种进步的神经疾病,被认为是影响65及以上人民痴呆症的最常见原因。 AD的特征在于淀粉样蛋白代谢的增加,并通过脑内神经元中的β-淀粉样蛋白低聚物的错误折叠和沉积。这些过程重塑神经元中的钙信号传导机制,通过细胞凋亡导致细胞死亡。尽管累积了关于地下广告的生物过程的知识,但迄今为止的数学模型仅限于描绘病理的一小部分。结果:这里,我们集成了多个数学模型来分析和理解淀粉样沉积,钙信号传导和线粒体渗透性之间的关系AD中的过渡孔(PTP)相关细胞凋亡。该模型用于模拟钙动力学在缺乏和存在广告的情况下。在没有AD的情况下,即没有β-淀粉样蛋白沉积,线粒体和细胞溶质钙水平仍保持低静止浓度。然而,我们具有β-淀粉样蛋白沉积的存在的胰岛素模拟,显示出钙离子进入细胞中的钙离子进入的增加,并且在内质网上的Ca〜(2+)通道受体中的呼吸困难。该复合模型使我们能够制作模拟无法通过实验测量。结论:我们的数学模型描绘了影响神经元中钙信号传导的机制可以帮助理解系统水平的广告,并且具有诊断和治疗应用的可能性。

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