دورية أكاديمية

Effects of Age at Auditory Brainstem Implantation: Impact on Auditory Perception, Language Development, Speech Intelligibility.

التفاصيل البيبلوغرافية
العنوان: Effects of Age at Auditory Brainstem Implantation: Impact on Auditory Perception, Language Development, Speech Intelligibility.
المؤلفون: Aslan F; Audiology Department, Faculty of Health Sciences., Ozkan HB; Audiology Department, Faculty of Health Sciences., Yücel E; Audiology Department, Faculty of Health Sciences., Sennaroğlu G; Audiology Department, Faculty of Health Sciences., Bilginer B; Neurosurgery Department., Sennaroğlu L; Otorhinolaryngology Department, Faculty of Medicine, Hacettepe University, Ankara, Turkey.
المصدر: Otology & neurotology : official publication of the American Otological Society, American Neurotology Society [and] European Academy of Otology and Neurotology [Otol Neurotol] 2020 Jan; Vol. 41 (1), pp. 11-20.
نوع المنشور: Journal Article
اللغة: English
بيانات الدورية: Publisher: Lippincott Williams & Wilkins Country of Publication: United States NLM ID: 100961504 Publication Model: Print Cited Medium: Internet ISSN: 1537-4505 (Electronic) Linking ISSN: 15317129 NLM ISO Abbreviation: Otol Neurotol Subsets: MEDLINE
أسماء مطبوعة: Original Publication: Hagerstown, MD : Lippincott Williams & Wilkins, c2001-
مواضيع طبية MeSH: Language Development* , Speech Intelligibility* , Speech Perception* , Treatment Outcome*, Auditory Brain Stem Implantation/*methods, Age Factors ; Auditory Brain Stem Implants ; Child ; Child, Preschool ; Cohort Studies ; Deafness/surgery ; Female ; Humans ; Infant ; Male ; Retrospective Studies
مستخلص: Objective: To study the effect of age at auditory brainstem implant (ABI) surgery on auditory perception, language, and speech intelligibility.
Study Design: Retrospective single cohort design.
Setting: Tertiary referral center.
Patients: In this study, 30 pediatric ABI users with no significant developmental issues were included. Participants were divided into two groups, according to age at surgery (Early Group: < 3 yr old [n = 15], Late Group: ≥ 3 yr old [n = 15]). Groups were matched by duration of ABI use and participants were evaluated after 5 years (±1 yr) experience with their device. The mean age at ABI surgery was 22.27 (ranged ± 6.5) months in the early group, 45.53 (ranged ± 7.9) months in the late group.
Intervention(s): Retrosigmoid craniotomy and ABI placement.
Main Outcome Measure(s): Auditory perception skills were evaluated using the Meaningful Auditory Integration Scale and Categories of Auditory Performance from the Children's Auditory Perception Test Battery. We used a closed-set pattern perception subtest, a closed-set word identification subtest, and an open-set sentence recognition subtest. Language performance was assessed with the Test of Early Language Development and Speech Intelligibility Rating, which was administered in a quiet room.
Results: In this study, the results demonstrated that the Early Group's auditory perception performance was better than the Late Group after 5 years of ABI use, when children had no additional needs (U = 12, p < 0.001). Speech intelligibility was the most challenging skill to develop, in both groups. Due to multiple regression analysis, we found that auditory perception categories can be estimated with speech intelligibility scores, pattern perception scores, receptive language scores, and age at ABI surgery variables in ABI users with no additional handicaps.
Conclusions: ABI is a viable option to provide auditory sensations for children with cochlear anomalies. ABI surgery under age 3 is associated with improved auditory perception and language development compared with older users.
References: Mellon NK. Language and Speech Acquisition. 2nd ed.USA:Lippincott Williams & Wilkins; 2009.
Niparko JK, Tobey EA, Thal DJ, et al. Spoken language development in children following cochlear implantation. JAMA 2010; 303:1498–1506.
Geers A, Brenner C, Davidson L. Factors associated with development of speech perception skills in children implanted by age five. Ear Hear 2003; 24:24S–35S.
Tobey EA, Thal D, Niparko JK, et al. Influence of implantation age on school-age language performance in pediatric cochlear implant users. Int J Audiol 2013; 52:219–229.
Buchman CA, Copeland BJ, Yu KK, Brown CJ, Carrasco VN, Pillsbury HC III. Cochlear implantation in children with congenital inner ear malformations. Laryngoscope 2004; 114:309–316.
Pakdaman MN, Herrmann BS, Curtin HD, Van Beek-King J, Lee DJ. Cochlear implantation in children with anomalous cochleovestibular anatomy: A systematic review. Otolaryngol Head Neck Surg 2012; 146:180–190.
Sennaroglu L, Sennaroglu G, Yücel E, et al. Long-term results of ABI in children with severe inner ear malformations. Otol Neurotol 2016; 37:865–872.
Colletti V, Shannon RV. Open set speech perception with auditory brainstem implant? Laryngoscope 2005; 115:1974–1978.
Wilkinson EP, Eisenberg LS, Krieger MD, et al. Initial results of a safety and feasibility study of auditory brainstem implantation in congenitally deaf children. Otol Neurotol 2017; 38:212–220.
Sennaroglu L, Colletti V, Manrique M, et al. Auditory brainstem implantation in children and non-neurofibromatosis type 2 patients: A consensus statement. Otol Neurotol 2011; 32:187–191.
Sennaroglu L, Ziyal I. Auditory brainstem implantation. Auris Nasus Larynx 2012; 39:439–450.
Buchman CA, Teagle HF, Roush PA, et al. Cochlear implantation in children with labyrinthine anomalies and cochlear nerve deficiency: Implications for auditory brainstem implantation. Laryngoscope 2011; 121:1979–1988.
Houston DM, Miyamoto RT. Effects of early auditory experience on word learning and speech perception in deaf children with cochlear implants: Implications for sensitive periods of language development. Otol Neurotol 2010; 31:1248–1253.
Sharma A, Dorman MF, Spahr AJ. A sensitive period for the development of the central auditory system in children with cochlear implants: Implications for age of implantation. Ear Hear 2002; 23:532–539.
Sharma A, Dorman MF, Kral A. The influence of a sensitive period on central auditory development in children with unilateral and bilateral cochlear implants. Hear Res 2005; 203:134–143.
Leigh J, Dettman S, Dowell R, Briggs R. Communication development in children who receive a cochlear implant by 12 months of age. Otol Neurotol 2013; 34:443–450.
Waltzman SB, Roland JT. Cochlear implantation in children younger than 12 months. Pediatrics 2005; 116:487–493.
Colletti V, Carner M, Miorelli V, Guida M, Colletti L, Fiorino F. Auditory brainstem implant (ABI): New frontiers in adults and children. Otolaryngol Head Neck Surg 2005; 133:126–138.
Colletti V, Carner M, Fiorino F, et al. Hearing restoration with auditory brainstem implant in three children with cochlear nerve aplasia. Otol Neurotol 2002; 23:682–693.
Robbins AM, Renshaw JJ, Berry SW. Evaluating meaningful auditory integration in profoundly hearing-impaired children. Am J Otol 1991; 12:144–150.
Yucel E, Sennaroglu G. Auditory Perception Test Battery for Children. 2011.
Güven S, Topbaş S. Adaptation of the test of Early Language Development-(TELD-3) into Turkish: Reliability and Validity Study. Int J Early Childhood Special Educ 2014; 6:151–176.
University of Southampton, Gilmour L. The inter-rater reliability of categories of auditory performance-II (CAP)-II. 2010.
Archbold S, Lutman M, Marshall D. Categories of auditory performance. Ann Otol Rhinol Laryngol Suppl 1995; 166:312–314.
Cox RM, McDaniel DM. Development of the Speech Intelligibility Rating (SIR) test for hearing aid comparisons. J Speech Hear Res 1989; 32:347–352.
SPSS IIBM SPSS statistics for Windows, version 20.0. New York:IBM Corp; 2011.
Colletti V, Fiorino F, Sacchetto L, Miorelli V, Carner M. Hearing habilitation with auditory brainstem implantation in two children with cochlear nerve aplasia. Int J Pediatr Otorhinolaryngol 2001; 60:99–111.
Nevison B, Laszig R, Sollmann W-P, et al. Results from a European clinical investigation of the Nucleus® multichannel auditory brainstem implant. Ear Hear 2002; 23:170–183.
Eisenberg LS, Johnson KC, Martinez AS, et al. Comprehensive evaluation of a child with an auditory brainstem implant. Otol Neurotol 2008; 29:251–257.
da Costa Monsanto R, Bittencourt AG, Neto NJB, et al. Auditory brainstem implants in children: Results based on a review of the literature. Int Adv Otol 2014; 10:284–290.
Zhong Y, Xu T, Dong R, Lyu J, Liu B, Chen X. The analysis of reliability and validity of the IT-MAIS, MAIS and MUSS. Int J Pediatr Otorhinolaryngol 2017; 96:106–110.
Govaerts PJ, De Beukelaer C, Daemers K, et al. Outcome of cochlear implantation at different ages from 0 to 6 years. Otol Neurotol 2002; 23:885–890.
Colletti V, Carner M, Miorelli V, Guida M, Colletti L, Fiorino FG. Cochlear implantation at under 12 months: Report on 10 patients. Laryngoscope 2005; 115:445–449.
Colletti L, Mandalà M, Zoccante L, Shannon RV, Colletti V. Infants versus older children fitted with cochlear implants: Performance over 10 years. Int J Pediatr Otorhinolaryngol 2011; 75:504–509.
Bergeson TR, Pisoni DB, Davis RA. Development of audiovisual comprehension skills in prelingually deaf children with cochlear implants. Ear Hear 2005; 26:149–164.
Bergeson TR, Houston DM, Miyamoto RT. Effects of congenital hearing loss and cochlear implantation on audiovisual speech perception in infants and children. Restor Neurol Neurosci 2010; 28:157–165.
Montag JL, AuBuchon AM, Pisoni DB, Kronenberger WG. Speech intelligibility in deaf children after long-term cochlear implant use. J Speech Lang Hear Res 2014; 57:2332–2343.
Schafer E, Utrup A. The effect of age of cochlear implantation on speech intelligibility to others. J Educ Pediatr (Re) Habilitative Audiol 2016; 22:51–61.
De Raeve L. A longitudinal study on auditory perception and speech intelligibility in deaf children implanted younger than 18 months in comparison to those implanted at later ages. Otol Neurotol 2010; 31:1261–1267.
Stelmachowicz PG, Pittman AL, Hoover BM, Lewis DE, Moeller MP. The importance of high-frequency audibility in the speech and language development of children with hearing loss. Arch Otolaryngol Head Neck Surg 2004; 130:556–562.
Choi HS, Choi JY, Moon IS, et al. Limitation of high pitch sound perception in nontumor patients with auditory brainstem implantation. Korean J Otorhinolaryngol Head Neck Surg 2017; 5:235–241.
Goffi-Gomez MVS, Magalhães AT, Neto RB, Tsuji RK, Gomes MdQT, Bento RF. Auditory brainstem implant outcomes and MAP parameters: Report of experiences in adults and children. Int J Pediatr Otorhinolaryngol 2012; 76:257–264.
Vincent C. Auditory brainstem implants: How do they work? Anat Rec (Hoboken) 2012; 295:1981–1986.
Sanna M, Khrais T, Guida M, Falcioni M. Auditory brainstem implant in a child with severely ossified cochlea. Laryngoscope 2006; 116:1700–1703.
Yücel E, Aslan F, Özkan HB, Sennaroğlu L. Recent rehabilitation experience with pediatric ABI users. J Int Adv Otol 2015; 11:110–113.
Geers AE, Sedey AL. Language and verbal reasoning skills in adolescents with 10 or more years of cochlear implant experience. Ear Hear 2011; 32: (1 suppl): 39S.
Nicholas JG, Geers AE. Will they catch up? The role of age at cochlear implantation in the spoken language development of children with severe to profound hearing loss. J Speech Lang Hear Res 2007; 50:1048–1062.
تواريخ الأحداث: Date Created: 20191203 Date Completed: 20200909 Latest Revision: 20210212
رمز التحديث: 20231215
DOI: 10.1097/MAO.0000000000002455
PMID: 31789803
قاعدة البيانات: MEDLINE
الوصف
تدمد:1537-4505
DOI:10.1097/MAO.0000000000002455