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Functional organization of a neural network for aversive olfactory learning in Caenorhabditis elegans.

机译:秀丽隐杆线虫厌恶性嗅觉学习的神经网络的功能组织。

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Many animals use their olfactory systems to learn to avoid dangers, but how neural circuits encode naive and learned olfactory preferences, and switch between those preferences, is poorly understood. Here, we map an olfactory network, from sensory input to motor output, which regulates the learned olfactory aversion of Caenorhabditis elegans for the smell of pathogenic bacteria. Naive animals prefer smells of pathogens but animals trained with pathogens lose this attraction. We find that two different neural circuits subserve these preferences, with one required for the naive preference and the other specifically for the learned preference. Calcium imaging and behavioral analysis reveal that the naive preference reflects the direct transduction of the activity of olfactory sensory neurons into motor response, whereas the learned preference involves modulations to signal transduction to downstream neurons to alter motor response. Thus, two different neural circuits regulate a behavioral switch between naive and learned olfactory preferences.
机译:许多动物都使用嗅觉系统来学习如何避免危险,但是人们对神经回路如何编码幼稚和习得的嗅觉偏好以及如何在这些偏好之间进行切换的了解却很少。在这里,我们绘制了一个嗅觉网络,从感官输入到运动输出,它调节了秀丽隐杆线虫对致病菌气味的嗅觉厌恶。幼稚的动物喜欢病原体的气味,但是接受病原体训练的动物却失去了这种吸引力。我们发现两种不同的神经回路可以满足这些偏好,其中一种是天真的偏好,另一种是学习的偏好。钙成像和行为分析表明,幼稚的偏好反映了嗅觉感觉神经元的活动直接转化为运动反应,而学习到的偏好涉及调节信号转导至下游神经元以改变运动反应。因此,两个不同的神经回路调节天真的和偏好的嗅觉偏好之间的行为切换。

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