The cochlear hook region detects harmonics beyond the canonical hearing range

Kazuhiro Horii, Bakushi Ogawa, Noriko Nagase, Iori Morimoto, Chikara Abe, Takenori Ogawa, Samuel Choi, Fumiaki Nin
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Abstract

Ultrasound, or sound at frequencies exceeding the conventional range of human hearing, is not only audible to mice, microbats, and dolphins, but also creates an auditory sensation when delivered through bone conduction in humans. Although ultrasound is utilized for brain activation and in hearing aids, the physiological mechanism of ultrasonic hearing remains unknown. In guinea pigs, we found that ultrasound above the hearing range delivered through ossicles of the middle ear evokes an auditory brainstem response and a mechano-electrical transduction current through hair cells, as shown by the local field potential called the cochlear microphonic potential (CM). The CM synchronizes with ultrasound, and like the response to audible sounds is actively and nonlinearly amplified. In vivo optical nano-vibration analysis revealed that the sensory epithelium in the hook region, the basal extreme of the cochlear turns, resonates in response both to ultrasound within the hearing range and to harmonics beyond the hearing range. The results indicate that hair cells can respond to stimulation at the optimal frequency and its harmonics, and the hook region detects ultrasound stimuli with frequencies more than two octaves higher than the upper limit of the ordinary hearing range.
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耳蜗钩区能检测到标准听力范围之外的谐波
超声波,即频率超过人类常规听力范围的声音,不仅小鼠、微型蝙蝠和海豚可以听到,而且通过骨传导传递给人类时也会产生听觉感受。虽然超声波可用于大脑激活和助听器,但超声波听觉的生理机制仍然未知。我们在豚鼠身上发现,通过中耳的听小骨传递的超声波高于听力范围,会唤起听觉脑干反应,并通过毛细胞产生机械电传导电流,这表现在被称为耳蜗微音电位(CM)的局部场电位上。CM 与超声波同步,与对可听声音的反应一样,会主动非线性地放大。体内光学纳米振动分析表明,耳蜗匝基极钩区的感觉上皮对听力范围内的超声波和听力范围外的谐波都有共振反应。结果表明,毛细胞能对最佳频率及其谐波的刺激做出反应,钩区能检测到频率比普通听力范围上限高两个八度以上的超声波刺激。
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