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Redundant neural circuits regulate olfactory integration

机译:冗余神经电路调节嗅觉集成

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Olfactory integration is important for survival in a natural habitat. However, how the nervous system processes signals of two odorants present simultaneously to generate a coherent behavioral response is poorly understood. Here, we characterize circuit basis for a form of olfactory integration in Caenorhabditis elegans . We find that the presence of a repulsive odorant, 2-nonanone, that signals threat strongly blocks the attraction of other odorants, such as isoamyl alcohol (IAA) or benzaldehyde, that signal food. Using a forward genetic screen, we found that genes known to regulate the structure and function of sensory neurons, osm-5 and osm-1 , played a critical role in the integration process. Loss of these genes mildly reduces the response to the repellent 2-nonanone and disrupts the integration effect. Restoring the function of OSM-5 in either AWB or ASH, two sensory neurons known to mediate 2-nonanone-evoked avoidance, is sufficient to rescue. Sensory neurons AWB and downstream interneurons AVA, AIB, RIM that play critical roles in olfactory sensorimotor response are able to process signals generated by 2-nonanone or IAA or the mixture of the two odorants and contribute to the integration. Thus, our results identify redundant neural circuits that regulate the robust effect of a repulsive odorant to block responses to attractive odorants and uncover the neuronal and cellular basis for this complex olfactory task. Author summary In their natural environment, animals, including humans, encounter complex olfactory stimuli. Thus, how the brain processes multiple sensory cues to generate a coherent behavioral output is critical for the survival of the animal. In the present study, we combined molecular cellular genetics, optical physiology and behavioral analysis to study a common olfactory phenomenon in which the presence of one odorant blocks the response to another. Our results show that the integrated response is regulated by redundant neuronal circuits that engage several interneurons essential for olfactory sensorimotor responses, a mechanism that likely ensures a robust behavioral response to sensory cues representing information critical for survival.
机译:嗅觉整合对于自然栖息地的生存至关重要。然而,神经系统如何处理同时存在的两个气味剂以产生相干行为应答的信号很差。在此,我们在八角杆菌中的一种形式的嗅觉整合的电路基础。我们发现存在令人厌恶的气味,2-不安的存在,信号威胁强烈地阻断了其他气味剂的吸引力,例如异戊醇(IAA)或苯甲醛,即信号食物。使用前瞻性遗传筛选,我们发现已知的基因调节感觉神经元,OSM-5和OSM-1的结构和功能,在整合过程中起着关键作用。这些基因的丧失温和地减少了对避难剂2-不然的反应,并破坏了整合效果。在AWB或ASH中恢复OSM-5的功能,已知的两个感觉神经元介绍2-不安诱发的避免,足以拯救。感官神经元AWB和下游界面ZHA,AIB,在嗅觉传感器响应中起关键作用的RIM能够处理由2-壬酮或IAA或两种气味剂的混合物产生的信号,并有助于整合。因此,我们的结果识别冗余神经电路,该冗余神经电路调节排斥性气味的鲁棒效果阻断对吸气气味的反应,并针对这种复杂的嗅觉任务揭示神经元和细胞基础。作者摘要在他们的自然环境中,动物,包括人类,遇到复杂的嗅觉刺激。因此,大脑如何处理多个感觉线索以产生相干行为输出对于动物的生存至关重要。在本研究中,我们组合分子细胞遗传学,光学生理学和行为分析,研究一种常见的嗅觉现象,其中一种气味的存在阻断对另一个气味的反应。我们的研究结果表明,综合响应由冗余神经元电路调节,该电路对嗅觉感应器响应的几个适用于嗅觉传感器响应的机制来调节,该机制可能确保对代表对生存至关重要的信息的感官提示鲁棒行为响应。

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