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Asymmetry Factors Shaping Regular and Irregular Bursting Rhythms in Central Pattern Generators

机译:塑造中央模式发生器中规则和不规则爆发节奏的不对称因素

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摘要

Central Pattern Generator (CPG) circuits are neural networks that generate rhythmic motor patterns. These circuits are typically built of half-center oscillator subcircuits with reciprocally inhibitory connections. Another common property in many CPGs is the remarkable rich spiking-bursting dynamics of their constituent cells, which balance robustness and flexibility to generate their joint coordinated rhythms. In this paper, we use conductance-based models and realistic connection topologies inspired by the crustacean pyloric CPG to address the study of asymmetry factors shaping CPG bursting rhythms. In particular, we assess the role of asymmetric maximal synaptic conductances, time constants and gap-junction connectivity to establish the regularity of half-center oscillator based CPGs. We map and characterize the synaptic parameter space that lead to regular and irregular bursting activity in these networks. The analysis indicates that asymmetric configurations display robust regular rhythms and that large regions of both regular and irregular but coordinated rhythms exist as a function of the asymmetry in the circuit. Our results show that asymmetry both in the maximal conductances and in the temporal dynamics of mutually inhibitory neurons can synergistically contribute to shape wide regimes of regular spiking-bursting activity in CPGs. Finally, we discuss how a closed-loop protocol driven by a regularity goal can be used to find and characterize regular regimes when there is not time to perform an exhaustive search, as in most experimental studies.
机译:中央模式发生器(CPG)电路是生成有节奏的运动模式的神经网络。这些电路通常由具有互禁止连接的半中心振荡器子电路构成。许多CPG的另一个共同特性是其组成细胞的显着丰富的突增动态,平衡了鲁棒性和灵活性以产生其联合协调的节奏。在本文中,我们使用基于电导的模型和受甲壳类幽门CPG启发的实际连接拓扑来解决影响CPG爆发节奏的不对称因素的研究。特别是,我们评估了不对称最大突触电导,时间常数和间隙连接的连通性,以建立基于半中心振荡器的CPG的规律性。我们映射和表征导致这些网络中的规则和不规则爆发活动的突触参数空间。分析表明,不对称配置显示出稳定的规则节奏,并且规则和不规则但协调的节奏都存在较大区域,这是电路中不对称性的函数。我们的研究结果表明,在最大电导率和相互抑制神经元的时间动态中的不对称性可以协同作用,从而促进CPG中规则的突突活动的广泛形态。最后,正如大多数实验研究一样,我们讨论了在没有时间执行详尽搜索时,如何使用由规律性目标驱动的闭环协议来查找和表征规律性方案。

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