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首页> 外文期刊>Proceedings of the Royal Society of London. Biological sciences >The dynein-tubulin motor powers active oscillations and amplification in the hearing organ of the mosquito.
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The dynein-tubulin motor powers active oscillations and amplification in the hearing organ of the mosquito.

机译:动力蛋白微管蛋白马达为蚊子的听力器官中的主动振荡和放大提供动力。

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摘要

The design principles and specific proteins of the dynein-tubulin motor, which powers the flagella and cilia of eukaryotes, have been conserved throughout the evolution of life from algae to humans. Cilia and flagella can support both motile and sensory functions independently, or sometimes in parallel to each other. In this paper we show that this dual sensory-motile role of eukaryotic cilia is preserved in the most sensitive of all invertebrate hearing organs, the Johnston's organ of the mosquito. The Johnston's organ displays spontaneous oscillations, which have been identified as being a characteristic of amplification in the ears of mosquitoes and Drosophila. In the auditory organs of Drosophila and vertebrates, the molecular basis of amplification has been attributed to the gating and adaptation of the mechanoelectrical transducer channels themselves. On the basis of their temperature-dependence and sensitivity to colchicine, we attribute the molecular basis of spontaneous oscillations by the Johnston's organ of the mosquito Culex quinquefasciatus, to the dynein-tubulin motor of the ciliated sensillae. If, as has been claimed for insect and vertebrate hearing organs, spontaneous oscillations epitomize amplification, then in the mosquito ear, this process is independent of mechanotransduction.
机译:在从藻类到人类的整个生命进化过程中,保护真核生物鞭毛和纤毛的动力蛋白-微管蛋白马达的设计原理和特定蛋白质一直受到保护。纤毛和鞭毛可以独立地或有时彼此并行地支持运动和感觉功能。在本文中,我们表明真核纤毛的这种双重感觉运动功能被保留在所有无脊椎动物听觉器官中最敏感的部分,即蚊子的约翰斯顿氏器官。约翰斯顿的器官显示出自发振荡,这已被确定为蚊子和果蝇耳朵中放大的特征。在果蝇和脊椎动物的听觉器官中,放大的分子基础已经归因于机电转换器通道本身的门控和适应。基于它们对秋水仙碱的温度依赖性和敏感性,我们将蚊子库蚊(Culex quinquefasciatus)的约翰斯顿氏器官的自发振荡的分子基础归因于纤毛感器的动力蛋白-微管蛋白运动。如果像昆虫和脊椎动物的听觉器官所声称的那样,自发振荡是放大现象,那么在蚊子耳中,该过程与机械转导无关。

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