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A Computational Model of the Escape Response Latency in the Giant Fiber System of Drosophila melanogaster

机译:果蝇巨型纤维系统逃逸反应潜伏期的计算模型

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摘要

The giant fiber system (GFS) is a multi-component neuronal pathway mediating rapid escape response in the adult fruit-fly Drosophila melanogaster, usually in the face of a threatening visual stimulus. Two branches of the circuit promote the response by stimulating an escape jump followed by flight initiation. A recent work demonstrated an age-associated decline in the speed of signal propagation through the circuit, measured as the stimulus-to-muscle depolarization response latency. The decline is likely due to the diminishing number of inter-neuronal gap junctions in the GFS of ageing flies. In this work, we presented a realistic conductance-based, computational model of the GFS that recapitulates the experimental results and identifies some of the critical anatomical and physiological components governing the circuit’s response latency. According to our model, anatomical properties of the GFS neurons have a stronger impact on the transmission than neuronal membrane conductance densities. The model provides testable predictions for the effect of experimental interventions on the circuit’s performance in young and ageing flies.
机译:巨型纤维系统(GFS)是介导成年果蝇果蝇(Drosophila melanogaster)快速逃避反应的多组分神经元途径,通常面对威胁性的视觉刺激。电路的两个分支通过刺激逃生跳跃和随后的飞行启动来促进响应。最近的一项研究表明,与刺激有关的肌肉去极化响应潜伏期可以衡量,与年龄相关的信号在电路中传播的速度会下降。下降的原因可能是衰老果蝇的GFS中神经间隙间隙连接的数量减少。在这项工作中,我们提出了一个基于电导率的现实的GFS计算模型,该模型概括了实验结果并确定了控制电路响应潜伏期的一些关键解剖和生理成分。根据我们的模型,与神经元膜电导密度相比,GFS神经元的解剖学性质对传递的影响更大。该模型为实验干预对幼果蝇和衰老果蝇电路性能的影响提供了可测试的预测。

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