Near-Infrared Laser Stimulation of the Auditory Nerve in Guinea Pigs

Q Physics and Astronomy Journal of the Optical Society of Korea Pub Date : 2016-04-01 DOI:10.3807/JOSK.2016.20.2.269
Tian Guan, Jian Wang, Yang Muqun, Kai Zhu, Yong Wang, Guohui Nie
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引用次数: 3

Abstract

Shenzhen Second People’s Hospital, Shenzhen, Guangdong 518035, P. R. China(Received November 17, 2015 : revised February 26, 2016 : accepted February 29, 2016)This study has investigated the feasibility of 980-nm low-energy pulsed near-infrared laser stimulation to evoke auditory responses, as well as the effects of radiant exposure and pulse duration on auditory responses. In the experiments, a hole was drilled in the basal turn of the cochlea in guinea pigs. An optical fiber with a 980-nm pulsed infrared laser was inserted into the hole, orientating the spiral ganglion cells in the cochlea. To model deafness, the tympanic membrane was mechanically damaged. Acoustically evoked compound action potentials (ACAPs) were recorded before and after deafness, and optically evoked compound action potentials (OCAPs) were recorded after deafness. Similar spatial selectivity between optical and acoustical stimulation was found. In addition, OCAP amplitudes increased with radiant exposure, indicating a photothermal mechanism induced by optical stimulation. Furthermore, at a fixed radiant exposure, OCAP amplitudes decreased as pulse duration increased, suggesting that optical stimulation might be governed by the time duration over which the energy is delivered. Thus, the current experiments have demonstrated that a 980-nm pulsed near-infrared laser with low energy can evoke auditory neural responses similar to those evoked by acoustical stimulation. This approach could be used to develop optical cochlear implants.Keywords : Cochlear implant, Pulsed near-infrared laser, Optical stimulation, Optical compound action potentialOCIS codes : (170.0170) Medical optics and biotechnology; (170.3890) Medical optics instrumentation
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近红外激光刺激豚鼠听神经
本研究探讨了980 nm低能量脉冲近红外激光刺激引起听觉反应的可行性,以及辐射暴露和脉冲持续时间对听觉反应的影响。在实验中,在豚鼠耳蜗的基底部钻了一个洞。将一根带有980纳米脉冲红外激光器的光纤插入孔中,以确定耳蜗螺旋神经节细胞的方向。为了模拟耳聋,鼓膜被机械损伤。分别记录耳聋前后的声诱发复合动作电位(acap)和耳聋后的光诱发复合动作电位(OCAPs)。在光刺激和声刺激之间发现了相似的空间选择性。此外,OCAP振幅随辐射暴露而增加,表明光刺激诱导的光热机制。此外,在固定的辐射照射下,OCAP振幅随着脉冲持续时间的增加而下降,这表明光刺激可能受能量传递的持续时间的控制。因此,目前的实验已经证明,低能量的980 nm脉冲近红外激光可以引起类似于声刺激引起的听觉神经反应。这种方法可用于开发光学人工耳蜗。关键词:人工耳蜗,脉冲近红外激光,光刺激,光复合作用电位ocis编码:(170.0170)医用光学与生物技术;(170.3890)医用光学仪器
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CiteScore
0.70
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审稿时长
2.3 months
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