课题基金 / 基金详情

Neural Models of Plasticity: Molecules to Networks

Neural Models of Plasticity: Molecules to Networks
可塑性神经模型:分子到网络
批准号:
6963855
负责人:
John H Byrne
金额:
$114.72万
依托单位国家:
美国
项目类别:
财政年份:
2000
资助国家:
美国
项目状态:
已结题
起止时间:
2000-06-01 至 2010-06-30

项目摘要

项目成果

John H Byrne的其他基金

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中文摘要
翻译
描述(由申请人提供): 神经系统的主要功能是以导致适应行为的方式处理信息。两种不同的方法,一种是理论的,另一种是经验的,被用来探索神经元可塑性在发育,学习,记忆,信息处理和其他复杂的大脑功能中的作用。理论方法模拟和合成脑功能的数学模型的基础上已知的和假设的神经功能的原则。经验方法描述了神经元复杂的生物化学和生物物理特性,确定其连接的规则,以及在发育和学习过程中修改其特性和连接的机制。虽然这两种方法在传统上是独立使用的,但神经生物学家、心理学家和适应系统理论家越来越认识到,理解大脑的进展取决于两种方法的结合。此外,在许多情况下,系统的知识已经成熟到这样的程度,即不仅有足够的信息来保证计算方法,而且在理解系统方面的进一步进展需要它。 该计划项目的总体目标是使用计算方法来研究神经元可塑性在多个层次的组织,从亚细胞神经元隔间内的分子动力学,神经元内的遗传网络,神经网络机制。各个项目通过共同的目标联系在一起,即研究海马体和相关结构中神经元的可塑性,并确定其对更高水平处理的贡献。个别项目将研究:1)可塑性背后的基因网络的动力学特性; 2)突触后Ca 2 +/钙调素信号通路的定量行为,在神经元可塑性中起着重要作用; 3)分子水平上突触可塑性的动力学及其作为海马可塑性底物的重要性;海马从多模态输入中构建高阶认知表征的神经网络机制。此外,各个项目将得到一个计算核心设施的支持,该设施将作为开发计算模型和在项目之间交流信息的资源。
英文摘要
DESCRIPTION (provided by applicant): The main function of the nervous system is to process information in ways that lead to adaptive behavior. Two different approaches, one theoretical and the other empirical, are being used to explore the role of neuronal plasticity in development, learning, memory, information processing, and other complex brain functions. The theoretical approach simulates and synthesizing brain function with mathematical models based on known and hypothesized principles of neural function. The empirical approach delineates the complex biochemical and biophysical properties of neurons, the rules that determine their connectivity, and the mechanisms through which their properties and connections are modified during development and learning. Although these two approaches have traditionally been used independently, there is a growing realization among neurobiologists, psychologists, and adaptive systems theorists that progress in understanding the brain is dependent on a combination of both approaches. In addition, in many cases, the knowledge of systems has matured to the point where there is not only a sufficient body of information to warrant a computational approach, but further progress in the understanding of the system requires it. The overall goal of the Program Project is to use computational approaches to examine neuronal plasticity at multiple levels of organization, ranging from molecular dynamics within subcellular neuronal compartments, to genetic networks within neurons, to neural network mechanisms. The individual Projects are linked by the common goal of investigating plasticity in neurons in the hippocampus and related structures and determining its contributions to higher levels of processing. The individual Projects will examine: 1) the dynamical properties of gene networks underlying plasticity; 2) the quantitative behavior of the postsynaptic Ca2+/calmodulin signaling pathway that plays an essential role in neuronal plasticity; 3) dynamics of synaptic plasticity at the molecular level and its importance as a substrate for plasticity in the hippocampus; and 4) the neural network mechanisms by which the hippocampus constructs high-order cognitive representations from multimodal inputs. In addition, the individual Projects will be supported by a Computational Core Facility that will serve as a resource for developing computational models and for the exchange of information among the projects.
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A novel approach to analyzing functional connectomics and combinatorial control in a tractable small-brain closed-loop system
A novel approach to analyzing functional connectomics and combinatorial control in a tractable small-brain closed-loop system
Modeling the Molecular Networks that Underlie the Formation and Consolidation of Memory
Modeling the Molecular Networks that Underlie the Formation and Consolidation of Memory