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激光诱导非线性光声刺激人圆窗。

Acoustic stimulation of the human round window by laser-induced nonlinear optoacoustics.

机构信息

Laser Zentrum Hannover E.V., Hollerithallee 8, 30419, Hannover, Germany.

NIFE, Lower Saxony Center for Biomedical Engineering, Implant Research and Development, Hannover, Germany.

出版信息

Sci Rep. 2024 Apr 8;14(1):8214. doi: 10.1038/s41598-024-58129-0.

Abstract

The feasibility of low frequency pure tone generation in the inner ear by laser-induced nonlinear optoacoustic effect at the round window was demonstrated in three human cadaveric temporal bones (TB) using an integral pulse density modulation (IPDM). Nanosecond laser pulses with a wavelength in the near-infrared (NIR) region were delivered to the round window niche by an optical fiber with two spherical lenses glued to the end and a viscous gel at the site of the laser focus. Using IPDM, acoustic tones with frequencies between 20 Hz and 1 kHz were generated in the inner ear. The sound pressures in scala tympani and vestibuli were recorded and the intracochlear pressure difference (ICPD) was used to calculate the equivalent sound pressure level (eq. dB SPL) as an equivalent for perceived loudness. The results demonstrate that the optoacoustic effect produced sound pressure levels ranging from 140 eq. dB SPL at low frequencies ≤ 200 Hz to 90 eq. dB SPL at 1 kHz. Therefore, the produced sound pressure level is potentially sufficient for patients requiring acoustic low frequency stimulation. Hence, the presented method offers a potentially viable solution in the future to provide the acoustic stimulus component in combined electro-acoustic stimulation with a cochlear implant.

摘要

通过在圆窗处使用积分脉冲密度调制(IPDM),在内耳中通过激光诱导的非线性光声效应产生低频纯音的可行性在三个人类尸体颞骨(TB)中得到了证明。使用带有两个球形透镜的光纤将纳秒激光脉冲输送到圆窗窝,将粘性凝胶放置在激光焦点处。使用 IPDM,在内耳中产生了频率在 20 Hz 和 1 kHz 之间的声波。记录了鼓阶和前庭中的声压,并使用 Cochlear 腔内压差(ICPD)计算等效声压级(eq. dB SPL),作为感知响度的等效值。结果表明,光声效应产生的声压级范围从低频的 140 eq. dB SPL(≤ 200 Hz)到 1 kHz 的 90 eq. dB SPL。因此,产生的声压级对于需要低频声刺激的患者来说是足够的。因此,所提出的方法为未来提供了一种潜在的可行解决方案,即在与人工耳蜗联合的电声刺激中提供声刺激组件。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d849/11001906/11fe74214136/41598_2024_58129_Fig1_HTML.jpg

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