Resting-State Functional Connectivity Predicts Cochlear-Implant Speech Outcomes.

IF 2.6 2区 医学 Q1 AUDIOLOGY & SPEECH-LANGUAGE PATHOLOGY
Ear and Hearing Pub Date : 2025-01-01 Epub Date: 2024-07-16 DOI:10.1097/AUD.0000000000001564
Jamal Esmaelpoor, Tommy Peng, Beth Jelfs, Darren Mao, Maureen J Shader, Colette M McKay
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引用次数: 0

Abstract

Objectives: Cochlear implants (CIs) have revolutionized hearing restoration for individuals with severe or profound hearing loss. However, a substantial and unexplained variability persists in CI outcomes, even when considering subject-specific factors such as age and the duration of deafness. In a pioneering study, we use resting-state functional near-infrared spectroscopy to predict speech-understanding outcomes before and after CI implantation. Our hypothesis centers on resting-state functional connectivity (FC) reflecting brain plasticity post-hearing loss and implantation, specifically targeting the average clustering coefficient in resting FC networks to capture variation among CI users.

Design: Twenty-three CI candidates participated in this study. Resting-state functional near-infrared spectroscopy data were collected preimplantation and at 1 month, 3 months, and 1 year postimplantation. Speech understanding performance was assessed using consonant-nucleus-consonant words in quiet and Bamford-Kowal-Bench sentences in noise 1-year postimplantation. Resting-state FC networks were constructed using regularized partial correlation, and the average clustering coefficient was measured in the signed weighted networks as a predictive measure for implantation outcomes.

Results: Our findings demonstrate a significant correlation between the average clustering coefficient in resting-state functional networks and speech understanding outcomes, both pre- and postimplantation.

Conclusions: This approach uses an easily deployable resting-state functional brain imaging metric to predict speech-understanding outcomes in implant recipients. The results indicate that the average clustering coefficient, both pre- and postimplantation, correlates with speech understanding outcomes.

静息状态功能连接预测人工耳蜗语音结果。
目的:人工耳蜗(CIs)已经彻底改变了重度或重度听力损失患者的听力恢复。然而,即使考虑到受试者的特定因素,如年龄和耳聋持续时间,CI结果仍然存在大量无法解释的变异性。在一项开创性的研究中,我们使用静息状态功能近红外光谱来预测CI植入前后的语音理解结果。我们的假设以静息状态功能连接(FC)为中心,反映了听力损失和植入后的大脑可塑性,特别针对静息FC网络的平均聚类系数来捕捉CI用户之间的变化。设计:23名CI候选人参与本研究。静息状态功能近红外光谱数据采集于种植前、种植后1个月、3个月和1年。使用辅音-核-辅音词在安静环境中和Bamford-Kowal-Bench在噪音环境中评估1年后的语音理解表现。利用正则化偏相关构建静息状态FC网络,并测量签名加权网络中的平均聚类系数作为植入结果的预测指标。结果:我们的研究结果表明静息状态功能网络的平均聚类系数与语音理解结果之间存在显著的相关性,无论是在植入前还是植入后。结论:该方法使用一种易于部署的静息状态功能脑成像指标来预测植入物接受者的语音理解结果。结果表明,植入前后的平均聚类系数与语音理解结果相关。
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来源期刊
Ear and Hearing
Ear and Hearing 医学-耳鼻喉科学
CiteScore
5.90
自引率
10.80%
发文量
207
审稿时长
6-12 weeks
期刊介绍: From the basic science of hearing and balance disorders to auditory electrophysiology to amplification and the psychological factors of hearing loss, Ear and Hearing covers all aspects of auditory and vestibular disorders. This multidisciplinary journal consolidates the various factors that contribute to identification, remediation, and audiologic and vestibular rehabilitation. It is the one journal that serves the diverse interest of all members of this professional community -- otologists, audiologists, educators, and to those involved in the design, manufacture, and distribution of amplification systems. The original articles published in the journal focus on assessment, diagnosis, and management of auditory and vestibular disorders.
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