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果蝇中对广域运动方向的抗噪声识别及其潜在神经机制

Noise-robust recognition of wide-field motion direction and the underlying neural mechanisms in Drosophila melanogaster.

作者信息

Suzuki Yoshinori, Ikeda Hideaki, Miyamoto Takuya, Miyakawa Hiroyoshi, Seki Yoichi, Aonishi Toru, Morimoto Takako

机构信息

1] Interdisciplinary Graduate School of Science and Engineering; Tokyo Institute of Technology; Yokohama, Kanagawa, 226-8502, Japan [2] Japan Society for the Promotion of Science, Tokyo, Japan [3] School of Life Sciences; Tokyo University of Pharmacy and Life Sciences, Hachio-ji, Tokyo, 192-0392, Japan.

Interdisciplinary Graduate School of Science and Engineering; Tokyo Institute of Technology; Yokohama, Kanagawa, 226-8502, Japan.

出版信息

Sci Rep. 2015 May 14;5:10253. doi: 10.1038/srep10253.

Abstract

Appropriate and robust behavioral control in a noisy environment is important for the survival of most organisms. Understanding such robust behavioral control has been an attractive subject in neuroscience research. Here, we investigated the processing of wide-field motion with random dot noise at both the behavioral and neuronal level in Drosophila melanogaster. We measured the head yaw optomotor response (OMR) and the activity of motion-sensitive neurons, horizontal system (HS) cells, with in vivo whole-cell patch clamp recordings at various levels of noise intensity. We found that flies had a robust sensation of motion direction under noisy conditions, while membrane potential changes of HS cells were not correlated with behavioral responses. By applying signal classification theory to the distributions of HS cell responses, however, we found that motion direction under noise can be clearly discriminated by HS cells, and that this discrimination performance was quantitatively similar to that of OMR. Furthermore, we successfully reproduced HS cell activity in response to noisy motion stimuli with a local motion detector model including a spatial filter and threshold function. This study provides evidence for the physiological basis of noise-robust behavior in a tiny insect brain.

摘要

在嘈杂环境中进行适当且稳健的行为控制对大多数生物体的生存至关重要。理解这种稳健的行为控制一直是神经科学研究中一个引人关注的课题。在此,我们在行为和神经元水平上研究了果蝇在随机点噪声下对广域运动的处理。我们通过体内全细胞膜片钳记录,在不同噪声强度水平下测量了头部偏航视动反应(OMR)以及运动敏感神经元——水平系统(HS)细胞的活动。我们发现,果蝇在噪声条件下对运动方向有稳健的感知,而HS细胞的膜电位变化与行为反应并不相关。然而,通过将信号分类理论应用于HS细胞反应的分布,我们发现HS细胞能够清晰地辨别噪声下的运动方向,并且这种辨别性能在数量上与OMR相似。此外,我们利用一个包含空间滤波器和阈值函数的局部运动检测器模型成功地再现了HS细胞对噪声运动刺激的反应。这项研究为微小昆虫大脑中噪声稳健行为的生理基础提供了证据。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5d37/4431354/bcedd4247472/srep10253-f1.jpg

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