Department of Neurosciences, ExpORL, KU Leuven, 3000, Leuven, Belgium.
Department of Neurosciences, Leuven Brain Institute, KU Leuven, 3000, Leuven, Belgium.
Sci Rep. 2022 Nov 10;12(1):19234. doi: 10.1038/s41598-022-23653-4.
In cochlear implant surgery, insertion of perimodiolar electrode arrays into the scala tympani can be complicated by trauma or even accidental translocation of the electrode array within the cochlea. In patients with partial hearing loss, cochlear trauma can not only negatively affect implant performance, but also reduce residual hearing function. These events have been related to suboptimal positioning of the cochlear implant electrode array with respect to critical cochlear walls of the scala tympani (modiolar wall, osseous spiral lamina and basilar membrane). Currently, the position of the electrode array in relation to these walls cannot be assessed during the insertion and the surgeon depends on tactile feedback, which is unreliable and often comes too late. This study presents an image-guided cochlear implant device with an integrated, fiber-optic imaging probe that provides real-time feedback using optical coherence tomography during insertion into the human cochlea. This novel device enables the surgeon to accurately detect and identify the cochlear walls ahead and to adjust the insertion trajectory, avoiding collision and trauma. The functionality of this prototype has been demonstrated in a series of insertion experiments, conducted by experienced cochlear implant surgeons on fresh-frozen human cadaveric cochleae.
在人工耳蜗植入手术中,将植入式电极阵列插入鼓阶可能会因创伤甚至电极阵列在耳蜗内的意外移位而变得复杂。对于部分听力损失的患者,耳蜗创伤不仅会对植入物性能产生负面影响,还会降低残余听力功能。这些事件与耳蜗植入式电极阵列相对于鼓阶的重要耳蜗壁(蜗轴壁、骨螺旋板和基底膜)的位置不佳有关。目前,在插入过程中无法评估电极阵列相对于这些壁的位置,外科医生依赖于不可靠且往往为时已晚的触觉反馈。本研究提出了一种图像引导的人工耳蜗装置,该装置带有集成的光纤成像探头,在插入人耳蜗时使用光学相干断层扫描提供实时反馈。这种新型装置使外科医生能够准确地检测和识别前方的耳蜗壁,并调整插入轨迹,避免碰撞和创伤。该原型的功能已在一系列由经验丰富的人工耳蜗植入外科医生在新鲜冷冻的人尸体耳蜗上进行的插入实验中得到证明。