Department of Neurobiology and Anatomy, University of Utah, Salt Lake City, UT, USA.
Department of Biomedical Engineering, University of Utah, Salt Lake City, UT, USA.
Chem Senses. 2019 Mar 11;44(3):173-188. doi: 10.1093/chemse/bjz005.
Understanding how sensory space maps to neural activity in the olfactory system requires efficiently and flexibly delivering numerous odorants within single experimental preparations. Such delivery is difficult with current olfactometer designs, which typically include limited numbers of stimulus channels and are subject to intertrial and interchannel contamination of odorants. Here, we present a novel olfactometer design that is easily constructed, modular, and capable of delivering an unlimited number of odorants in air with temporal precision and no detectable intertrial or interchannel contamination. The olfactometer further allows for the flexible generation of odorant mixtures and flexible timing of odorant sequences. Odorant delivery from the olfactometer is turbulent but reliable from trial to trial, supporting operant conditioning of mice in an odorant discrimination task and permitting odorants and concentrations to be mapped to neural activity with a level of precision equivalent to that obtained with a flow dilution olfactometer. This novel design thus provides several unique advantages for interrogating olfactory perception and for mapping sensory space to neural activity in the olfactory system.
理解嗅觉系统中的感觉空间如何映射到神经活动需要在单个实验中有效地、灵活地传递大量气味。目前的气味计设计在这方面存在困难,因为它们通常只包含有限数量的刺激通道,并且容易受到气味在试验间和通道间的污染。在这里,我们提出了一种新的气味计设计,它易于构建、模块化,能够以时间精度和无可检测的试验间或通道间污染的方式在空气中传递无限数量的气味。该气味计还允许灵活地生成气味混合物和灵活地控制气味序列的时间。从气味计中输送气味是湍流的,但每次试验都很可靠,这支持了小鼠在气味辨别任务中的操作性条件反射,并允许将气味和浓度映射到神经活动,其精度与使用气流稀释气味计获得的精度相当。因此,这种新颖的设计为研究嗅觉感知以及将感觉空间映射到嗅觉系统中的神经活动提供了几个独特的优势。