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植入成年个体的不同耳蜗节段的阻抗随时间的变化。

Temporal changes in impedance of implanted adults for various cochlear segments.

作者信息

Leone C A, Mosca F, Grassia R

机构信息

Ear Nose Throat Department, Monaldi Hospital, Naples, Italy.

出版信息

Acta Otorhinolaryngol Ital. 2017 Aug;37(4):312-319. doi: 10.14639/0392-100X-1471.

DOI:10.14639/0392-100X-1471
PMID:28872161
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5584104/
Abstract

Electrode impedance (EI) is the first objective assessment carried out during the surgical procedure and follow-up of cochlear implanted patients. This measure provides information on the integrity of electrodes and on the surrounding environment. It is one of the main factors responsible for energy consumption of the cochlear implant (CI). The aim of our study is to investigate changes over time in EI in adult recipients implanted with the perimodiolar array by comparing differences in various cochlear segments. In addition, we explore the relationship between these objective measures and subjective measures such as T-level and C-level. We studied 28 adult patients. Impedance values (IVs) were calculated in "common-ground" (CG) and in monopolar (M1+2) mode for electrode groups in basal middle and apical segments. We found significant decreases in IVs between activation and 1 month. We obtained higher values for basal impedance, whereas lower IVs were found for apical electrodes at all observation times. Statistical pairing over time between impedance and T/C values showed significant correlation for both global impedance (GI) and T-C levels at CG and M1+2 mode up to 6 months. Segregated statistical analysis also showed a significant and prolonged correlation of basal IVs and fitting parameters. The higher basal impedance over time can be explained by the higher proportion of newly formed tissue in this region. The linear correlation of impedances with the fitting parameters become not significant after 3/6 months for the apical and middle segments and remained significant only for the basal region over time. This behaviour underlines the importance of persistence in intra-cochlear factors in influencing fitting parameters in the basal segment.

摘要

电极阻抗(EI)是在人工耳蜗植入患者的手术过程及随访期间进行的首个客观评估。该测量可提供有关电极完整性及周围环境的信息。它是影响人工耳蜗(CI)能量消耗的主要因素之一。我们研究的目的是通过比较不同耳蜗节段的差异,调查接受蜗周阵列植入的成年患者EI随时间的变化。此外,我们还探究这些客观测量与诸如T级和C级等主观测量之间的关系。我们研究了28名成年患者。针对基底、中部和顶部节段的电极组,以“共地”(CG)和单极(M1 + 2)模式计算阻抗值(IVs)。我们发现激活后与1个月之间IVs显著降低。我们获得的基底阻抗值较高,而在所有观察时间点,顶部电极的IVs较低。随时间对阻抗与T/C值进行统计配对显示,在CG和M1 + 2模式下,直至6个月,总体阻抗(GI)和T - C水平均具有显著相关性。单独的统计分析还显示基底IVs与适配参数存在显著且持续的相关性。随着时间推移,较高的基底阻抗可由该区域新形成组织的较高比例来解释。对于顶部和中部节段,3/6个月后阻抗与适配参数的线性相关性变得不显著,且仅基底区域随时间仍保持显著。这种情况突显了耳蜗内因素在影响基底节段适配参数方面持续存在的重要性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e394/5584104/f3834b1c4a5f/0392-100X-37-312-g003.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e394/5584104/85905a1652c5/0392-100X-37-312-g001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e394/5584104/bd81315b8e45/0392-100X-37-312-g002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e394/5584104/f3834b1c4a5f/0392-100X-37-312-g003.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e394/5584104/85905a1652c5/0392-100X-37-312-g001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e394/5584104/bd81315b8e45/0392-100X-37-312-g002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e394/5584104/f3834b1c4a5f/0392-100X-37-312-g003.jpg

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本文引用的文献

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