蓝斑
神经可塑性
神经科学
人工耳蜗植入
光遗传学
脑干
心理学
听力学
刺激
听觉皮层
医学
中枢神经系统
作者
Erin Glennon,Silvana Valtcheva,Angela Zhu,Youssef Zaim Wadghiri,Mario A. Svirsky,Robert C. Froemke
出处
期刊:Nature
[Nature Portfolio]
日期:2022-12-21
卷期号:613 (7943): 317-323
被引量:33
标识
DOI:10.1038/s41586-022-05554-8
摘要
Cochlear implants (CIs) are neuroprosthetic devices that can provide hearing to deaf people1. Despite the benefits offered by CIs, the time taken for hearing to be restored and perceptual accuracy after long-term CI use remain highly variable2,3. CI use is believed to require neuroplasticity in the central auditory system, and differential engagement of neuroplastic mechanisms might contribute to the variability in outcomes4-7. Despite extensive studies on how CIs activate the auditory system4,8-12, the understanding of CI-related neuroplasticity remains limited. One potent factor enabling plasticity is the neuromodulator noradrenaline from the brainstem locus coeruleus (LC). Here we examine behavioural responses and neural activity in LC and auditory cortex of deafened rats fitted with multi-channel CIs. The rats were trained on a reward-based auditory task, and showed considerable individual differences of learning rates and maximum performance. LC photometry predicted when CI subjects began responding to sounds and longer-term perceptual accuracy. Optogenetic LC stimulation produced faster learning and higher long-term accuracy. Auditory cortical responses to CI stimulation reflected behavioural performance, with enhanced responses to rewarded stimuli and decreased distinction between unrewarded stimuli. Adequate engagement of central neuromodulatory systems is thus a potential clinically relevant target for optimizing neuroprosthetic device use.
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