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Do terrestrial hermit crabs sniff? Air flow and odorant capture by flicking antennules

机译:陆地寄居蟹会闻吗?轻拂环面捕获气流和气味

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摘要

Capture of odorant molecules by olfactory organs from the surrounding fluid is the first step of smelling. Sniffing intermittently moves fluid across sensory surfaces, increasing delivery rates of molecules to chemosensory receptors and providing discrete odour samples. Aquatic malacostracan crustaceans sniff by flicking olfactory antennules bearing arrays of chemosensory hairs (aesthetascs), capturing water in the arrays during downstroke and holding the sample during return stroke. Terrestrial malacostracans also flick antennules, but how their flicking affects odour capture from air is not understood. The terrestrial hermit crab, Coenobita rugosus, uses antennules bearing shingle-shaped aesthetascs to capture odours. We used particle image velocimetry to measure fine-scale fluid flow relative to a dynamically scaled physical model of a flicking antennule, and computational simulations to calculate diffusion to aesthetascs by odorant molecules carried in that flow. Air does not flow into the aesthetasc array during flick downstrokes or recovery strokes. Odorants are captured from air flowing around the outside of the array during flick downstrokes, when aesthetascs face upstream and molecule capture rates are 21% higher than for stationary antennules. Bursts of flicking followed by pauses deliver discrete odour samples to olfactory sensors, causing intermittency in odour capture by a different mechanism than aquatic crustaceans use.
机译:嗅觉器官从周围液体中捕获气味分子是嗅觉的第一步。嗅探间歇地使流体流过感觉表面,从而增加了分子向化学感觉受体的输送速度,并提供了离散的气味样品。水生疟原虫甲壳类动物会嗅嗅带有化学感应毛(麻醉剂)阵列的嗅觉触角,在下冲程期间捕获阵列中的水,并在回程期间保持样品。陆生的疟原虫也可以轻拂天线的末端,但是它们的轻拂如何影响从空气中捕获气味的方式尚不清楚。陆生寄居蟹Coenobita rugosus使用带有带状麻点状麻醉剂的触角捕获气味。我们使用粒子图像测速技术来测量相对于甩动的前庭的动态缩放物理模型的细尺度流体流动,并使用计算模拟来计算该流动中携带的气味分子向麻醉剂的扩散。在轻击或恢复冲程期间,空气不会流入麻醉剂阵列。在轻击期间,当麻醉剂面向上游并且分子捕获率比固定瓣膜高21%时,会从围绕阵列外部流动的空气中捕获气味。突然的甩动和暂停会向嗅觉传感器传递离散的气味样本,从而通过与水生甲壳类动物不同的机制导致气味捕获的间歇性。

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