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Multi-Scale Models of Neural Mechanisms Controlling Breathing in Mammals

Multi-Scale Models of Neural Mechanisms Controlling Breathing in Mammals
控制哺乳动物呼吸的神经机制的多尺度模型
批准号:
10263041
负责人:
Jeffrey c Smith
金额:
$47.51万
依托单位国家:
美国
项目类别:
财政年份:
--
资助国家:
美国
项目状态:
未结题
起止时间:
至

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中文摘要
翻译
研究包括进一步开发和测试组成呼吸神经控制系统的神经元和网络的新的神经动力学模型,这是在啮齿动物脑干中进行的平行实验研究。正在不断开发的基于数据的模型包括:(1)脑干呼吸神经元的生物物理现实细胞水平计算模型,其中包括细胞结构和生物物理特性的当前信息,例如神经元活动的离子电导机制;以及(2)脑干呼吸神经网络的多尺度模型,其中包括关于网络功能和结构结构的现有信息。这些建模研究的总体目标是从机制上深入了解哺乳动物呼吸神经控制系统动态运行的微电路和大规模呼吸网络中细胞和电路级别的特性是如何集成的。进一步发展了啮齿动物脑干呼吸中枢模式生成器(CPG)网络的新模型,该模型由分布在连续排列的脑干结构隔室中的相互作用的兴奋性和抑制性亚网络组成,每个亚网络在呼吸神经活动模式的产生和控制中具有不同的功能,这些呼吸神经活动模式在正常的吸气和呼气呼吸周期中演变。该CPG模型中使用的基本网络结构和细胞特性来自于在大鼠和小鼠脑干-脊髓原位进行的电生理和神经解剖学重建研究,以及在体外分离的具有活性电路的活体脑干切片制备的子网络。这些模型还包括通过对传入信号建模来调节不同的电路组件,包括来自关键神经调节控制系统的节律性和音调活跃的输入,这些系统被认为参与了呼吸活动模式的调节。对于CPG网络运行的分析,还应用了动力学系统理论的方法来识别电路运行的关键动力学变量和参数,这些变量和参数是呼吸节律产生的基础,并控制吸气和呼气神经活动在不同功能阶段之间的有序转换。微电路和大规模网络模型的计算机模拟模拟了在不同的体外和原位条件下实验发现的单细胞和神经元群体活动模式的许多特征,包括在电路活动的光遗传操作期间。从实验研究中得出并用这些模型进一步验证的一个重要的新假说是,呼吸CPG内存在着在多个细胞和网络组织水平上产生振荡活动的能力,形成了一个强大的振荡机制的动力系统。因此,呼吸节律产生的不同机制可以以脑状态依赖的方式在功能上表达,并构成多种呼吸运动行为的基础,其中一些发生在不同的正常生理条件下,另一些发生在病理生理条件下,如严重脑缺氧(异常低氧条件)和相关的呼吸回路突触抑制失效。对不同水平的蜂窝和网络复杂性的模型进行的模拟进一步证实了这一概念的合理性,并提供了对所涉及的基本蜂窝和网络机制的洞察。我们还继续在大型分布式并行处理系统上实施涉及集群计算的模拟方法,包括NIH Biowulf高性能计算集群,该集群允许实时模拟大规模网络模型。在系统水平上,呼吸神经控制系统的模型已经进一步发展,将基本神经回路动力学与外周呼吸泵的力学、氧气和二氧化碳交换、血气运输以及通过血/脑氧气和二氧化碳水平等信号对中枢呼吸回路的生理反馈调节相结合。这些模型评估了开环和闭环系统模型配置中的系统级操作和控制。这些模型代表了第一代系统级控制模型,它集成了神经系统结构功能特性的基本要素和呼吸系统气体交换和运输系统的现实特征。所有这些模型目前都被应用于进一步探索脑干呼吸回路的工作原理和呼吸活动的控制,包括在与大脑和身体氧/二氧化碳动态平衡紊乱相关的各种(病理)生理条件下。
英文摘要
Research involved the further development and testing of novel neurodynamical models of neurons and networks comprising the respiratory neural control system as studied experimentally in parallel in the rodent brainstem. Data-based models under continuous development included: (1) biophysically realistic cellular-level computational models of brainstem respiratory neurons incorporating current information on cellular architecture and biophysical properties such as ionic conductance mechanisms underlying neuronal activity; and (2) multi-scale models of brainstem respiratory neural networks incorporating available information on network functional and structural architecture. The overall objective of these modeling studies was to gain mechanistic insights into the manner in which cellular- and circuit-level properties are integrated into microcircuits as well as large-scale respiratory networks for dynamical operation of the mammalian respiratory neural control system. A new model of respiratory central pattern generator (CPG) networks in the rodent brainstem was further developed consisting of interacting excitatory and inhibitory subnetworks distributed in serially arranged brainstem structural compartments, each with distinct functional roles in generation and control of the respiratory neural activity patterns that evolve during the normal breathing cycle of inspiration followed by expiration. The basic network architecture and cellular properties used in this CPG model are derived from electrophysiological and neuroanatomical reconstruction studies conducted in the rat and mouse brainstem-spinal cord in situ and on subnetworks isolated in living brainstem slice preparations with active circuits in vitro. These models also incorporated regulation of different circuit components by modeled afferent input signals, including rhythmically- and tonically-active inputs from critical neuromodulatory control systems that are known to be involved in regulation of respiratory activity pattern generation. For analyses of CPG network operation, methods from dynamical systems theory were also applied to identify critical dynamical variables and parameters of circuit operation that underlie respiratory rhythm generation and control the orderly transitions between the functionally distinct phases of inspiratory and expiratory neural activity. Computer simulations with the microcircuit and large-scale network models mimicked many features of the single-cell and neuron population activity patterns found experimentally under different in vitro and in situ conditions, including during optogenetic manipulations of circuit activity. A major new hypothesis derived from experimental studies and further tested with these models was that the capability to generate oscillatory activity exists within the respiratory CPG at multiple levels of cellular and network organization, forming a robust dynamical system of oscillatory mechanisms. Thus different mechanisms of respiratory rhythm generation can be functionally expressed in a brain state-dependent manner and underlie multiple respiratory motor behaviors, some of which occur under various normal physiological conditions and others of which emerge under pathophysiological conditions such as during severe brain hypoxia (conditions of abnormally low oxygen) and associated failure of synaptic inhibition in respiratory circuits. Simulations with models of different levels of cellular and network complexity further confirmed the plausibility of this concept and have provided insights into the essential cellular and network mechanisms involved. We have also continued implementation of simulation approaches involving cluster computing on large distributed parallel processing systems including the NIH Biowulf high-performance computing cluster that allow real-time simulation of large-scale network models. At the system level, models of the respiratory neural control system have been further developed that couple essential neural circuit dynamics with peripheral respiratory pump mechanics, oxygen and carbon dioxide exchange, blood gas transport, and physiological feedback regulation of central respiratory circuits by signals such as blood/brain levels of oxygen and carbon dioxide. These models have evaluated system-level operation and control in open- and closed-loop model configurations. These models represent the first generation of system-level control models that integrate essential elements of nervous system structural-functional properties and realistic features of the respiratory gas exchange and transport system. All of these models are currently being applied to further explore principles of operation of brainstem respiratory circuits and control of respiratory activity including under various (patho)physiological conditions associated with disturbances of brain and body oxygen/carbon dioxide homeostasis.
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Multi-Scale Models of Neural Mechanisms Controlling Breathing in Mammals
Multi-Scale Models of Neural Mechanisms Controlling Breathing in Mammals
Neural Mechanisms Controlling Breathing In Mammals
Neural Mechanisms Controlling Breathing In Mammals
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