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Analysis and Modeling of Ca2+ Signaling Spines

Analysis and Modeling of Ca2+ Signaling Spines
Ca2 信号刺的分析和建模
批准号:
6726035
负责人:
MARY B KENNEDY
金额:
$72.89万
依托单位国家:
美国
项目类别:
财政年份:
2003
资助国家:
美国
项目状态:
已结题
起止时间:
2003-04-01 至 2008-02-29

项目摘要

项目成果

MARY B KENNEDY的其他基金

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中文摘要
翻译
描述(由申请人提供) 神经和精神疾病部分是由于突触传递调节紊乱引起的。在突触能棘中,通过NMDA受体的钙内流是突触可塑性的主要调节器。刺包含许多可由Ca 2+调节的信号蛋白。不同的调节途径在不同的实验条件下被激活;因此,钙内流可导致突触强度在不同持续时间内的增加或减少。本计划项目中提出的工作目标是定量了解棘中Ca 2+触发的Ca 2+调节信号转导,并应用计算方法来刺激棘中Ca 2+信号传导过程中初始事件的动态。该计划包括四个项目和一个核心,将提供新的计算机软件。项目1将利用计算机程序Mcell,根据真实的突触几何形状和测量的相关信号分子的空间分布和动力学特性,开发和测试脊髓中钙动力学模型。这些模型将使用在核心中开发的简化程序界面构建,并将纳入项目2和4中生成的数据。项目2将在光学和电子显微镜水平上使用定量免疫细胞化学来研究脊椎中钙源和钙汇的组织,以及Ca 2+靶点CaM激酶II的分布。这些数据将与项目4中的测量结果进行比较,并用于约束项目1和项目3中的模拟。项目3将开发和测试精确的CaMKII激活动力学模型,该模型将被纳入项目1中构建的脊柱中的Ca 2+动力学模型。将结合项目4对CaMKII激活模拟的预测进行实验测试。项目4将使用双光子荧光显微镜来测量[Ca 2 +]信号及其在单个脊柱中的调节。这些数据将与项目2的数据相结合,并用于构建和测试项目1和3中的模型。该计划解决了NINDS的通道,突触和电路计划的两个目标:1。促进研究人员在分子和细胞水平上的合作,以开发多学科方法来分析通道和突触;促进神经科学家、计算机科学家和物理学家之间的合作,开发用于数据分析和建模的计算工具。模型和模拟的目的是量化关于Ca+在脊柱中的功能的假设,以便用实验严格地测试它们。我们将试图预测测量的突触的结构和分子组成的变化对它们的信号传导能力的相对重要性。这些预测将通过与实验的比较来检验。因此,我们认为,我们提出的模型和模拟生成的强大的定量工具来研究突触信号的动力学,而不是在自己的目的。
英文摘要
DESCRIPTION (provided by applicant) Neurological and mental diseases result, in part, from derangements in regulation of synaptic transmission. In glutamatergic spines, calcium influx through NMDA receptors is a principal regulator of synaptic plasticity. Spines contain many signaling proteins that can be regulated by Ca2+. Different regulatory pathways are activated under different experimental conditions; and, thus, calcium influx can lead to increases or decreases, of varying durations, in synaptic strength. The objectives of the work proposed in this Program Project are to gain a quantitative understanding of Ca2+-regulated signal transduction triggered by Ca2+ in spines, and to apply computational methods to stimulate the dynamics of initial events during Ca2+ signaling in spines. The program includes four projects and a core that will provide new computer software. Project 1 will make use of the computer program Mcell to develop and test models of calcium dynamics in spines based on realistic synaptic geometries and measured spatial distributions and kinetic properties of relevant signaling molecules. The models will be constructed with the use of a streamlined program interface to be developed in the core, and will incorporate data generated in Projects 2 and 4. Project 2 will use quantitative immunocytochemistry at the light and electron microscope levels to study the organization of calcium sources and sinks in spines, as well as the distribution of the Ca2+ target, CaM kinase II. The data will be compared with measurements made in Project 4, and used to constrain simulations arising from Projects 1 and 3. Project 3 will develop and test accurate kinetic models of activation of CaMKII that will be incorporated into the models of Ca2+ dynamics in spines constructed in Project 1. Predictions of simulations of activation of CaMKII will be tested experimentally in conjunction with project 4. Project 4 will use 2-photon fluorescence microscopy to measure [Ca2+] signals and their regulation in individual spines. The data will be integrated with that from project 2, and used to construct and test models made in projects 1 and 3. The program addresses two goals of the Channels, Synapses, and Circuits program of NINDS: 1. To facilitate collaborations among researchers working at molecular and cellular levels to develop multidisciplinary approaches for analysis of channels and synapses and 2. To facilitate collaborations among neuroscientists, computer scientists, and physicists to develop computational tools for data analysis and modeling. The purpose of the models and simulations will be to quantify hypotheses about Ca+ function in spines in order to test them rigorously with experiments. We will attempt to predict the relative importance of measured variations in the structure and molecular composition of synapses for their signaling capabilities. The predictions will be tested by comparison to experiments. Thus, we view the models and the simulations we propose to generate as powerful quantitative tools with which to study the dynamics of synaptic signaling, and not as an end in themselves.
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