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Anatomically Detailed and Large-Scale Simulations Studying Synapse Loss and Synchrony Using NeuroBox

机译:使用NeuroBox的解剖学详细的大规模仿真研究突触丢失和同步

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摘要

The morphology of neurons and networks plays an important role in processing electrical and biochemical signals. Based on neuronal reconstructions, which are becoming abundantly available through databases such as NeuroMorpho.org, numerical simulations of Hodgkin-Huxley-type equations, coupled to biochemical models, can be performed in order to systematically investigate the influence of cellular morphology and the connectivity pattern in networks on the underlying function. Development in the area of synthetic neural network generation and morphology reconstruction from microscopy data has brought forth the software tool NeuGen. Coupling this morphology data (either from databases, synthetic, or reconstruction) to the simulation platform UG 4 (which harbors a neuroscientific portfolio) and VRL-Studio, has brought forth the extendible toolbox NeuroBox. NeuroBox allows users to perform numerical simulations on hybrid-dimensional morphology representations. The code basis is designed in a modular way, such that e.g., new channel or synapse types can be added to the library. Workflows can be specified through scripts or through the VRL-Studio graphical workflow representation. Third-party tools, such as ImageJ, can be added to NeuroBox workflows. In this paper, NeuroBox is used to study the electrical and biochemical effects of synapse loss vs. synchrony in neurons, to investigate large morphology data sets within detailed biophysical simulations, and used to demonstrate the capability of utilizing high-performance computing infrastructure for large scale network simulations. Using new synapse distribution methods and Finite Volume based numerical solvers for compartment-type models, our results demonstrate how an increase in synaptic synchronization can compensate synapse loss at the electrical and calcium level, and how detailed neuronal morphology can be integrated in large-scale network simulations.
机译:神经元和网络的形态在处理电和生化信号中起重要作用。基于可通过NeuroMorpho.org等数据库大量获得的神经元重建,可以对Hodgkin-Huxley型方程进行数值模拟,并结合生化模型进行研究,以便系统地研究细胞形态和连通性模式的影响在网络上的基本功能。在合成神经网络生成和从显微镜数据重建形态学方面的发展提出了软件工具NeuGen。将此形态数据(来自数据库,合成的或重建的)耦合到仿真平台UG 4(具有神经科学产品组合)和VRL-Studio,便推出了可扩展的工具箱NeuroBox。 NeuroBox允许用户对混合维形态表示进行数值模拟。代码基础以模块化的方式设计,例如可以将新的通道或突触类型添加到库中。可以通过脚本或VRL-Studio图形工作流程表示来指定工作流程。可以将诸如ImageJ之类的第三方工具添加到NeuroBox工作流程中。在本文中,NeuroBox用于研究神经元中突触丢失与同步的电学和生化效应,在详细的生物物理模拟中研究大型形态数据集,并用于演示利用高性能计算基础设施进行大规模开发的能力网络模拟。使用新的突触分布方法和基于有限体积的数值求解器进行隔室类型模型,我们的结果证明了突触同步的增加如何在电和钙水平上补偿突触损失,以及如何将详细的神经元形态整合到大规模网络中模拟。

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