Responsiveness of the Electrically Stimulated Cochlear Nerve in Children With Cochlear Nerve Deficiency

被引:49
|
作者
He, Shuman [1 ]
Shahsavarani, Bahar S. [2 ]
McFayden, Tyler C. [3 ]
Wang, Haibo [4 ]
Gill, Katherine E. [5 ]
Xu, Lei [4 ]
Chao, Xiuhua [4 ]
Luo, Jianfen [4 ]
Wang, Ruijie [4 ]
He, Nancy [1 ]
机构
[1] Boys Town Natl Res Hosp, Ctr Hearing Res, 555 North 30th St, Omaha, NE 68131 USA
[2] Univ Nebraska, Dept Special Educ & Commun Disorders, Lincoln, NE USA
[3] Virginia Polytech Inst & State Univ, Dept Psychol, Blacksburg, VA 24061 USA
[4] Shandong Prov Hosp, Dept Otolaryngol Head & Neck Surg, Jinan, Shandong, Peoples R China
[5] Purdue Univ, Dept Speech Language & Hearing Sci, W Lafayette, IN 47907 USA
来源
EAR AND HEARING | 2018年 / 39卷 / 02期
基金
美国国家卫生研究院;
关键词
Cochlear implant; Cochlear nerve; Cochlear nerve deficiency; Electrically evoked auditory compound action potentials; Neural refractoriness; NEUROPATHY SPECTRUM DISORDER; SENSORINEURAL HEARING-LOSS; AMPLITUDE-GROWTH FUNCTIONS; AUDITORY-NERVE; IMPLANT USERS; RESPONSE PROPERTIES; NEURAL EXCITATION; RECOVERY FUNCTION; ACTION-POTENTIALS; ELECTRODE ARRAYS;
D O I
10.1097/AUD.0000000000000467
中图分类号
R36 [病理学]; R76 [耳鼻咽喉科学];
学科分类号
100104 ; 100213 ;
摘要
Objectives: This study aimed to (1) investigate the responsiveness of the cochlear nerve (CN) to a single biphasic-electrical pulse in implanted children with cochlear nerve deficiency (CND) and (2) compare their results with those measured in implanted children with normal-size CNs. Design: Participants included 23 children with CND (CND1 to CND23) and 18 children with normal-size CNs (S1 to S18). All subjects except for CND1 used Cochlear Nucleus cochlear implants with contour electrode arrays in their test ears. CND1 was implanted with a Cochlear Nucleus Freedom cochlear implant with a straight electrode array in the test ear. For each subject, the CN input/output (I/O) function and the refractory recovery function were measured using electrophysiological measures of the electrically evoked compound action potential (eCAP) at multiple electrode sites across the electrode array. Dependent variables included eCAP threshold, the maximum eCAP amplitude, slope of the I/O function, and time-constants of the refractory recovery function. Slopes of I/O functions were estimated using statistical modeling with a sigmoidal function. Recovery time-constants, including measures of the absolute refractory period and the relative refractory period, were estimated using statistical modeling with an exponential decay function. Generalized linear mixed-effect models were used to evaluate the effects of electrode site on the dependent variables measured in children with CND and to compare results of these dependent variables between subject groups. Results: The eCAP was recorded at all test electrodes in children with normal-size CNs. In contrast, the eCAP could not be recorded at any electrode site in 4 children with CND. For all other children with CND, the percentage of electrodes with measurable eCAPs decreased as the stimulating site moved in a basal-to-apical direction. For children with CND, the stimulating site had a significant effect on the slope of the I/O functions and the relative refractory period but showed no significant effect on eCAP threshold and the maximum eCAP amplitude. Children with CND had significantly higher eCAP thresholds, smaller maximum eCAP amplitudes, flatter slopes of I/O functions, and longer absolute refractory periods than children with normal-size CNs. There was no significant difference in the relative refractory period measured in these two subject groups. Conclusions: In children with CND, the functional status of the CN varied along the length of the cochlea. Compared with children with normal-size CNs, children with CND showed reduced CN responsiveness to electrical stimuli. The prolonged CN absolute refractory period in children with CND might account for, at least partially, the observed benefit of using relatively slow pulse rate in these patients.
引用
收藏
页码:238 / 250
页数:13
相关论文
共 50 条
  • [1] The Effect of Pulse Polarity on Neural Response of the Electrically Stimulated Cochlear Nerve in Children With Cochlear Nerve Deficiency and Children With Normal-Sized Cochlear Nerves
    Xu, Lei
    Skidmore, Jeffrey
    Luo, Jianfen
    Chao, Xiuhua
    Wang, Ruijie
    Wang, Haibo
    He, Shuman
    EAR AND HEARING, 2020, 41 (05): : 1306 - 1319
  • [2] The Effect of Interphase Gap on Neural Response of the Electrically Stimulated Cochlear Nerve in Children With Cochlear Nerve Deficiency and Children With Normal-Sized Cochlear Nerves
    He, Shuman
    Xu, Lei
    Skidmore, Jeffrey
    Chao, Xiuhua
    Jeng, Fuh-Cherng
    Wang, Ruijie
    Luo, Jianfen
    Wang, Haibo
    EAR AND HEARING, 2020, 41 (04): : 918 - 934
  • [3] Cochlear implantation in children with cochlear nerve deficiency
    Vincenti, Vincenzo
    Ormitti, Francesca
    Ventura, Elisa
    Guida, Maurizio
    Piccinini, Alessia
    Pasanisi, Enrico
    INTERNATIONAL JOURNAL OF PEDIATRIC OTORHINOLARYNGOLOGY, 2014, 78 (06) : 912 - 917
  • [4] Cochlear Implantation in Children With Cochlear Nerve Absence or Deficiency
    Kutz, Joe Walter, Jr.
    Lee, Kenneth H.
    Isaacson, Brandon
    Booth, Timothy N.
    Sweeney, Melissa H.
    Roland, Peter S.
    OTOLOGY & NEUROTOLOGY, 2011, 32 (06) : 956 - 961
  • [5] Effect of Increasing Pulse Phase Duration on Neural Responsiveness of the Electrically Stimulated Cochlear Nerve
    He, Shuman
    Xu, Lei
    Skidmore, Jeffrey
    Chao, Xiuhua
    Riggs, William J.
    Wang, Ruijie
    Vaughan, Chloe
    Luo, Jianfen
    Shannon, Michelle
    Warner, Cynthia
    EAR AND HEARING, 2020, 41 (06): : 1606 - 1618
  • [6] Unilateral Cochlear Nerve Deficiency in Children
    Clemmens, Clarice S.
    Guidi, Jessica
    Caroff, Aviva
    Cohn, Samuel J.
    Brant, Jason A.
    Laury, Adrienne M.
    Bilaniuk, Larissa T.
    Germiller, John A.
    OTOLARYNGOLOGY-HEAD AND NECK SURGERY, 2013, 149 (02) : 318 - 325
  • [7] Evaluation of Cochlear Implantation in Children With Cochlear Nerve Absence or Deficiency
    Shakhtour, Leyn B.
    Song, Sophia
    Orobello, Nicklas C.
    Garrett, Samuel
    Ambrose, Tracey
    Behzadpour, Hengameh K.
    Vezina, Gilbert
    Preciado, Diego A.
    Reilly, Brian K.
    OTOLARYNGOLOGY-HEAD AND NECK SURGERY, 2024, 171 (04) : 1197 - 1204
  • [8] Audiologic Outcome of Cochlear Implantation in Children With Cochlear Nerve Deficiency
    Yousef, Medhat
    Mesallam, Tamer A.
    Garadat, Soha N.
    Almasaad, Ayna
    Alzhrani, Farid
    Alsanosi, Abdulrahman
    Hagr, Abdulrahman
    OTOLOGY & NEUROTOLOGY, 2021, 42 (01) : 38 - 46
  • [9] The cochlear nerve canal and internal auditory canal in children with normal cochlea but cochlear nerve deficiency
    Yan, Fei
    Li, Jianhong
    Xian, Junfang
    Wang, Zhenchang
    Mo, Lingyan
    ACTA RADIOLOGICA, 2013, 54 (03) : 292 - 298
  • [10] Diameter of the Cochlear Nerve Canal predicts Cochlear Nerve Deficiency in Children with Sensorineural Hearing Loss
    Sorge, Martin
    Sorge, Ina
    Pirlich, Markus
    Fuchs, Michael
    Meuret, Sylvia
    Hirsch, Franz Wolfgang
    Dietz, Andreas
    Graefe, Daniel
    ROFO-FORTSCHRITTE AUF DEM GEBIET DER RONTGENSTRAHLEN UND DER BILDGEBENDEN VERFAHREN, 2022, 194 (10): : 1132 - 1139