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昆虫转向的神经模型在嗅觉和路径整合中的应用。

A Neural Model for Insect Steering Applied to Olfaction and Path Integration.

机构信息

Vision Group, Department of Biology, Lund University, 221 00 Lund, Sweden

National Research Council of Canada, University of Waterloo Collaboration Centre, Waterloo, N2L 3G1 Canada

出版信息

Neural Comput. 2022 Oct 7;34(11):2205-2231. doi: 10.1162/neco_a_01540.

Abstract

Many animal behaviors require orientation and steering with respect to the environment. For insects, a key brain area involved in spatial orientation and navigation is the central complex. Activity in this neural circuit has been shown to track the insect's current heading relative to its environment and has also been proposed to be the substrate of path integration. However, it remains unclear how the output of the central complex is integrated into motor commands. Central complex output neurons project to the lateral accessory lobes (LAL), from which descending neurons project to thoracic motor centers. Here, we present a computational model of a simple neural network that has been described anatomically and physiologically in the LALs of male silkworm moths, in the context of odor-mediated steering. We present and analyze two versions of this network, one rate based and one based on spiking neurons. The modeled network consists of an inhibitory local interneuron and a bistable descending neuron (flip-flop) that both receive input in the LAL. The flip-flop neuron projects onto neck motor neurons to induce steering. We show that this simple computational model not only replicates the basic parameters of male silkworm moth behavior in a simulated odor plume but can also take input from a computational model of path integration in the central complex and use it to steer back to a point of origin. Furthermore, we find that increasing the level of detail within the model improves the realism of the model's behavior, leading to the emergence of looping behavior as an orientation strategy. Our results suggest that descending neurons originating in the LALs, such as flip-flop neurons, are sufficient to mediate multiple steering behaviors. This study is therefore a first step to close the gap between orientation circuits in the central complex and downstream motor centers.

摘要

许多动物行为都需要根据环境进行定向和转向。对于昆虫来说,参与空间定向和导航的关键大脑区域是中央复合体。该神经回路的活动已被证明可以跟踪昆虫相对于环境的当前航向,并且也被提议作为路径整合的基础。然而,中央复合体的输出如何整合到运动指令中仍不清楚。中央复合体输出神经元投射到外侧附属叶(LAL),从那里传出的神经元投射到胸运动中枢。在这里,我们提出了一个简单神经网络的计算模型,该模型在雄性家蚕蛾的 LAL 中已经在解剖学和生理学上进行了描述,其涉及气味介导的转向。我们提出并分析了该网络的两个版本,一个基于速率,另一个基于尖峰神经元。该模型网络由一个抑制性局部中间神经元和一个双稳态传出神经元(翻转神经元)组成,它们都在 LAL 中接收输入。翻转神经元投射到颈部运动神经元上以诱导转向。我们表明,这个简单的计算模型不仅复制了雄性家蚕蛾行为在模拟气味羽流中的基本参数,还可以接收来自中央复合体中路径整合的计算模型的输入,并使用它引导回原点。此外,我们发现,在模型中增加细节水平可以提高模型行为的真实性,从而导致出现循环行为作为一种定向策略。我们的结果表明,起源于 LAL 的传出神经元,如翻转神经元,足以介导多种转向行为。因此,这项研究是缩小中央复合体中的定向电路与下游运动中枢之间差距的第一步。

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