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Network Adaptation Improves Temporal Representation of Naturalistic Stimuli in Drosophila Eye: I Dynamics

机译:网络适​​应改善果蝇眼中自然刺激的时间表示:动态

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摘要

Because of the limited processing capacity of eyes, retinal networks must adapt constantly to best present the ever changing visual world to the brain. However, we still know little about how adaptation in retinal networks shapes neural encoding of changing information. To study this question, we recorded voltage responses from photoreceptors (R1–R6) and their output neurons (LMCs) in the Drosophila eye to repeated patterns of contrast values, collected from natural scenes. By analyzing the continuous photoreceptor-to-LMC transformations of these graded-potential neurons, we show that the efficiency of coding is dynamically improved by adaptation. In particular, adaptation enhances both the frequency and amplitude distribution of LMC output by improving sensitivity to under-represented signals within seconds. Moreover, the signal-to-noise ratio of LMC output increases in the same time scale. We suggest that these coding properties can be used to study network adaptation using the genetic tools in Drosophila, as shown in a companion paper (Part II).
机译:由于眼睛的处理能力有限,因此视网膜网络必须不断适应以最佳地将不断变化的视觉世界呈现给大脑。但是,对于视网膜网络中的适应如何影响变化信息的神经编码,我们仍然知之甚少。为了研究这个问题,我们记录了果蝇眼中感光器(R1-R6)及其输出神经元(LMC)对从自然场景收集的对比度值的重复模式的电压响应。通过分析这些渐变电位神经元的连续光感受器到LMC的转换,我们表明编码的效率是通过自适应动态提高的。尤其是,自适应可通过在几秒钟内提高对欠佳表示的信号的灵敏度来增强LMC输出的频率和幅度分布。而且,LMC输出的信噪比在相同的时间范围内增加。我们建议这些编码属性可用于使用果蝇中的遗传工具研究网络适应性,如随行论文(第二部分)所示。

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