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蚊子中的非经典气味编码。

Non-canonical odor coding in the mosquito.

机构信息

Laboratory of Neurogenetics and Behavior, The Rockefeller University, New York, NY 10065, USA; Kavli Neural Systems Institute, New York, NY 10065, USA; Weill Cornell/Rockefeller/Sloan Kettering Tri-Institutional MD-PhD Program, New York, NY 10065, USA.

Laboratory of Neurogenetics and Behavior, The Rockefeller University, New York, NY 10065, USA; Kavli Neural Systems Institute, New York, NY 10065, USA.

出版信息

Cell. 2022 Aug 18;185(17):3104-3123.e28. doi: 10.1016/j.cell.2022.07.024.

Abstract

Aedes aegypti mosquitoes are a persistent human foe, transmitting arboviruses including dengue when they feed on human blood. Mosquitoes are intensely attracted to body odor and carbon dioxide, which they detect using ionotropic chemosensory receptors encoded by three large multi-gene families. Genetic mutations that disrupt the olfactory system have modest effects on human attraction, suggesting redundancy in odor coding. The canonical view is that olfactory sensory neurons each express a single chemosensory receptor that defines its ligand selectivity. We discovered that Ae. aegypti uses a different organizational principle, with many neurons co-expressing multiple chemosensory receptor genes. In vivo electrophysiology demonstrates that the broad ligand-sensitivity of mosquito olfactory neurons depends on this non-canonical co-expression. The redundancy afforded by an olfactory system in which neurons co-express multiple chemosensory receptors may increase the robustness of the mosquito olfactory system and explain our long-standing inability to disrupt the detection of humans by mosquitoes.

摘要

埃及伊蚊是人类的顽固敌人,它们在吸食人血时会传播登革热等虫媒病毒。蚊子对体味和二氧化碳非常敏感,它们利用三种大型多基因家族编码的离子型化学感觉受体来探测这些物质。破坏嗅觉系统的基因突变对人类的吸引力只有适度的影响,这表明气味编码存在冗余。经典观点认为,嗅觉感觉神经元各自表达一种单一的化学感觉受体,决定其配体的选择性。我们发现埃及伊蚊采用了一种不同的组织原则,许多神经元共同表达多种化学感觉受体基因。体内电生理学证明,蚊子嗅觉神经元广泛的配体敏感性依赖于这种非经典的共表达。在嗅觉系统中,神经元共同表达多种化学感觉受体提供的冗余可能会增加蚊子嗅觉系统的稳健性,并解释我们长期以来无法干扰蚊子对人类的探测能力的原因。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e179/9480278/ccb6cb978e48/nihms-1828572-f0002.jpg

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