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Reading out olfactory receptors: Feedforward circuits detect odors in mixtures without demixing

机译:读出嗅觉感受器:前馈回路无需分离即可检测混合物中的气味

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摘要

The olfactory system, like other sensory systems, can detect specific stimuli of interest amidst complex, varying backgrounds. To gain insight into the neural mechanisms underlying this ability, we imaged responses of mouse olfactory bulb glomeruli to mixtures. We used this data to build a model of mixture responses that incorporated nonlinear interactions and trial-to-trial variability and explored potential decoding mechanisms that can mimic mouse performance when given glomerular responses as input. We find that a linear decoder with sparse weights could match mouse performance using just a small subset of the glomeruli (~15). However, when such a decoder is trained only with single odors, it generalizes poorly to mixture stimuli due to nonlinear mixture responses. We show that mice similarly fail to generalize, suggesting that they learn this segregation task discriminatively by adjusting task-specific decision boundaries without taking advantage of a demixed representation of odors.
机译:像其他感觉系统一样,嗅觉系统可以在复杂,变化的背景中检测到特定的目标刺激。为了深入了解这种能力的神经机制,我们对小鼠嗅球肾小球对混合物的反应进行了成像。我们使用这些数据建立了混合反应模型,该模型结合了非线性相互作用和试验至试验的可变性,并探索了在给定肾小球反应作为输入时可以模仿鼠标性能的潜在解码机制。我们发现,仅使用一小部分肾小球(〜15),具有稀疏权重的线性解码器就可以与鼠标性能匹配。然而,当这种解码器仅用单一气味训练时,由于非线性混合响应,它对混合刺激的推广性很差。我们显示,小鼠同样无法归纳概括,这表明它们通过调整任务特定的决策边界而没有利用气味的混合表示,从而有区别地学习该隔离任务。

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