Recent odor experience selectively modulates olfactory sensitivity across the glomerular output in the mouse olfactory bulb.

IF 2.8 4区 心理学 Q1 BEHAVIORAL SCIENCES
Narayan Subramanian, Lee Min Leong, Paria Salemi Mokri Boukani, Douglas A Storace
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Abstract

Although animals can reliably locate and recognize odorants embedded in complex environments, the neural circuits for accomplishing these tasks remain incompletely understood. Adaptation is likely to be important as it could allow neurons in a brain area to adjust to the broader sensory environment. Adaptive processes must be flexible enough to allow the brain to make dynamic adjustments, while maintaining sufficient stability so that organisms do not forget important olfactory associations. Processing within the mouse olfactory bulb is likely involved in generating adaptation, although there are conflicting models of how it transforms the glomerular output of the mouse olfactory bulb. Here we performed 2-photon Ca2+ imaging from mitral/tufted glomeruli in awake mice to determine the time course of recovery from adaptation, and whether it acts broadly or selectively across the glomerular population. Individual glomerular responses, as well as the overall population odor representation were similar across imaging sessions. However, odor-concentration pairings presented with interstimulus intervals upwards of 30-s evoked heterogeneous adaptation that was concentration-dependent. We demonstrate that this form of adaptation is unrelated to variations in respiration, and olfactory receptor neuron glomerular measurements indicate that it is unlikely to be inherited from the periphery. Our results indicate that the olfactory bulb output can reliably transmit stable odor representations, but recent odor experiences can selectively shape neural responsiveness for upwards of 30 seconds. We propose that neural circuits that allow for non-uniform adaptation across mitral/tufted glomeruli could be important for making dynamic adjustments in complex odor environments.

最近的气味经验选择性地调节嗅觉敏感性通过肾小球输出在小鼠嗅球。
虽然动物可以可靠地定位和识别嵌入在复杂环境中的气味,但完成这些任务的神经回路仍然不完全清楚。适应可能很重要,因为它可以使大脑区域的神经元适应更广泛的感觉环境。适应过程必须足够灵活,允许大脑进行动态调整,同时保持足够的稳定性,使生物体不会忘记重要的嗅觉联系。小鼠嗅球内的处理过程可能与产生适应性有关,尽管关于它如何改变小鼠嗅球的肾小球输出存在相互矛盾的模型。在这里,我们对清醒小鼠二尖瓣/簇状肾小球进行了2光子Ca2+成像,以确定适应恢复的时间过程,以及它是否广泛或选择性地作用于肾小球群体。个体肾小球反应,以及整个人群的气味表现在成像过程中是相似的。然而,在刺激间隔超过30秒时出现的气味-浓度配对引起了浓度依赖的异质适应。我们证明这种形式的适应与呼吸变化无关,嗅觉受体神经元肾小球测量表明它不太可能从外周遗传。我们的研究结果表明,嗅球输出可以可靠地传递稳定的气味表征,但最近的气味体验可以选择性地塑造神经反应长达30秒。我们提出,允许二尖瓣/丛状肾小球非均匀适应的神经回路对于在复杂气味环境中进行动态调整可能很重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Chemical Senses
Chemical Senses 医学-行为科学
CiteScore
8.60
自引率
2.90%
发文量
25
审稿时长
1 months
期刊介绍: Chemical Senses publishes original research and review papers on all aspects of chemoreception in both humans and animals. An important part of the journal''s coverage is devoted to techniques and the development and application of new methods for investigating chemoreception and chemosensory structures.
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