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Odorant mixtures elicit less variable and faster responses than pure odorants

机译:气味混合物比纯气味剂引起更少的变化和更快的响应

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摘要

In natural environments, odors are typically mixtures of several different chemical compounds. However, the implications of mixtures for odor processing have not been fully investigated. We have extended a standard olfactory receptor model to mixtures and found through its mathematical analysis that odorant-evoked activity patterns are more stable across concentrations and first-spike latencies of receptor neurons are shorter for mixtures than for pure odorants. Shorter first-spike latencies arise from the nonlinear dependence of binding rate on odorant concentration, commonly described by the Hill coefficient, while the more stable activity patterns result from the competition between different ligands for receptor sites. These results are consistent with observations from numerical simulations and physiological recordings in the olfactory system of insects. Our results suggest that mixtures allow faster and more reliable olfactory coding, which could be one of the reasons why animals often use mixtures in chemical signaling.
机译:在自然环境中,气味通常是几种不同化合物的混合物。但是,尚未充分研究混合物对气味处理的影响。我们已经将标准的嗅觉受体模型扩展到混合物,并通过其数学分析发现,混合物的气味诱发活性模式在浓度范围内更稳定,混合物的受体神经元的第一峰值潜伏期短于纯气味物质。较短的首次加标延迟是由结合速率对气味浓度的非线性依赖性引起的,通常用希尔系数来描述,而更稳定的活性模式则由不同配体之间对受体位点的竞争而产生。这些结果与昆虫嗅觉系统中数值模拟和生理记录的观察结果一致。我们的结果表明,混合物允许更快,更可靠的嗅觉编码,这可能是动物经常在化学信号中使用混合物的原因之一。

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