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A computational model of internal representations of chemical gradients in environments for chemotaxis of Caenorhabditis elegans

机译:秀丽隐杆线虫趋化性环境中化学梯度内部表示的计算模型

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摘要

The small roundworm Caenorhabditis elegans employs two strategies, termed pirouette and weathervane, which are closely related to the internal representation of chemical gradients parallel and perpendicular to the travelling direction, respectively, to perform chemotaxis. These gradients must be calculated from the chemical information obtained at a single point, because the sensory neurons are located close to each other at the nose tip. To formulate the relationship between this sensory input and internal representations of the chemical gradient, this study proposes a simple computational model derived from the directional decomposition of the chemical concentration at the nose tip that can generate internal representations of the chemical gradient. The ability of the computational model was verified by using a chemotaxis simulator that can simulate the body motions of pirouette and weathervane, which confirmed that the computational model enables the conversion of the sensory input and head-bending angles into both types of gradients with high correlations of approximately r > 0.90 (p < 0.01) with the true gradients. In addition, the chemotaxis index of the model was 0.64, which is slightly higher than that in the actual animal (0.57). In addition, simulation using a connectome-based neural network model confirmed that the proposed computational model is implementable in the actual network structure.
机译:小型round虫秀丽隐杆线虫采用两种策略,称为旋回和风向标,这两种策略分别与平行于和垂直于行进方向的化学梯度的内部表示密切相关,以进行趋化性。这些梯度必须根据在单个点获得的化学信息来计算,因为感觉神经元在鼻尖位置彼此靠近。为了表达这种感官输入和化学梯度的内部表示之间的关系,本研究提出了一个简单的计算模型,该模型是根据鼻子尖端化学浓度的定向分解得出的,可以生成化学梯度的内部表示。计算模型的能力通过使用可以模拟旋转木马和风向标的人体运动的趋化性仿真器进行了验证,这证实了该计算模型能够将感觉输入角和头部弯曲角转换为具有高度相关性的两种梯度带有真实梯度的近似r> 0.90(p <0.01)。另外,模型的趋化性指数为0.64,略高于实际动物的趋化性指数(0.57)。此外,使用基于连接器的神经网络模型进行的仿真证实,所提出的计算模型可在实际的网络结构中实现。

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