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网络适应性改善果蝇眼中自然主义刺激的时间表征:II机制。

Network adaptation improves temporal representation of naturalistic stimuli in Drosophila eye: II mechanisms.

作者信息

Nikolaev Anton, Zheng Lei, Wardill Trevor J, O'Kane Cahir J, de Polavieja Gonzalo G, Juusola Mikko

机构信息

Department of Biomedical Science, University of Sheffield, Sheffield, United Kingdom.

出版信息

PLoS One. 2009;4(1):e4306. doi: 10.1371/journal.pone.0004306. Epub 2009 Jan 30.

DOI:10.1371/journal.pone.0004306
PMID:19180195
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2628722/
Abstract

Retinal networks must adapt constantly to best present the ever changing visual world to the brain. Here we test the hypothesis that adaptation is a result of different mechanisms at several synaptic connections within the network. In a companion paper (Part I), we showed that adaptation in the photoreceptors (R1-R6) and large monopolar cells (LMC) of the Drosophila eye improves sensitivity to under-represented signals in seconds by enhancing both the amplitude and frequency distribution of LMCs' voltage responses to repeated naturalistic contrast series. In this paper, we show that such adaptation needs both the light-mediated conductance and feedback-mediated synaptic conductance. A faulty feedforward pathway in histamine receptor mutant flies speeds up the LMC output, mimicking extreme light adaptation. A faulty feedback pathway from L2 LMCs to photoreceptors slows down the LMC output, mimicking dark adaptation. These results underline the importance of network adaptation for efficient coding, and as a mechanism for selectively regulating the size and speed of signals in neurons. We suggest that concert action of many different mechanisms and neural connections are responsible for adaptation to visual stimuli. Further, our results demonstrate the need for detailed circuit reconstructions like that of the Drosophila lamina, to understand how networks process information.

摘要

视网膜网络必须不断适应,以便将不断变化的视觉世界最佳地呈现给大脑。在此,我们检验这样一种假说:适应性是网络内多个突触连接处不同机制作用的结果。在一篇配套论文(第一部分)中,我们表明,果蝇眼睛中光感受器(R1 - R6)和大双极细胞(LMC)的适应性,通过增强LMC对重复自然对比度序列的电压反应的幅度和频率分布,在数秒内提高了对代表性不足信号的敏感性。在本文中,我们表明,这种适应性既需要光介导的电导,也需要反馈介导的突触电导。组胺受体突变果蝇中存在缺陷的前馈通路会加快LMC输出,模拟极端的光适应。从L2 LMC到光感受器的反馈通路出现故障会减慢LMC输出,模拟暗适应。这些结果强调了网络适应性对于高效编码的重要性,以及作为一种选择性调节神经元信号大小和速度的机制的重要性。我们认为,许多不同机制和神经连接的协同作用负责对视觉刺激的适应。此外,我们的结果表明,需要像果蝇薄板那样进行详细的电路重建,以了解网络如何处理信息。

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本文引用的文献

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PLoS One. 2009;4(1):e4307. doi: 10.1371/journal.pone.0004307. Epub 2009 Jan 30.
2
The neural substrate of spectral preference in Drosophila.果蝇光谱偏好的神经基础。
Neuron. 2008 Oct 23;60(2):328-42. doi: 10.1016/j.neuron.2008.08.010.
3
Distinct roles for two histamine receptors (hclA and hclB) at the Drosophila photoreceptor synapse.果蝇光感受器突触处两种组胺受体(hclA和hclB)的不同作用。
Genetics. 2023 May 26;224(2). doi: 10.1093/genetics/iyad064.
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Sustained deep-tissue voltage recording using a fast indicator evolved for two-photon microscopy.使用专为双光子显微镜开发的快速指示剂进行持续的深层组织电压记录。
Cell. 2022 Sep 1;185(18):3408-3425.e29. doi: 10.1016/j.cell.2022.07.013. Epub 2022 Aug 18.
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Binocular mirror-symmetric microsaccadic sampling enables hyperacute 3D vision.双目镜对称微扫视采样可实现超锐 3D 视觉。
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