近红外光学脑成像技术应用于人工耳蜗植入者中枢可塑性研究的进展

刘昊天;刘玉和;

1:北京大学第一医院耳鼻咽喉头颈外科

摘要
<正>人工耳蜗植入(cochlear implant,CI)为目前有效解决重度、极重度感音神经性聋的最主要手段,但是人工耳蜗植入术后个体康复效果也差异巨大[1]。其影响因素复杂,相关机制不清,目前的研究无法对其作出全面完美的解释和预测[2~4]。大多数患者需要数月甚至数年的康复训练才能达到最大的感知性能[5],提示听觉皮层发育与可塑性可能是患者植入术后效果的关键因素。
关键词
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作者
刘昊天;刘玉和;
参考文献

1 Lazard DS,Giraud AL,Gnansia D,et al.Understanding the deafened brain:implications for cochlear implant rehabilitation[J].Eur Ann Otorhinolaryngol Head Neck Dis,2012,129(2):98-103.

2 Kral A,Kronenberger WG,Pisoni DB,et al.Neurocognitive factors in sensory restoration of early deafness:a connectome model[J].Lancet Neurol,2016,15(6):610-621.

3 Lazard DS,Innes-Brown H,Barone P.Adaptation of the communicative brain to post-lingual deafness.Evidence from functional imaging[J].Hear Res,2014,307:136-143.

4 Peterson NR,Pisoni DB,Miyamoto RT.Cochlear implants and spoken language processing abilities:review and assessment of the literature[J].Restor Neurol Neurosci,2010,28(2):237-250.

5 Petersen B,Gjedde A,Wallentin M,et al.Cortical plasticity after cochlear implantation[J].Neural Plast,2013,2013:318521.

6 Rouger J,Lagleyre S,Demonet JF,et al.Evolution of crossmodal reorganization of the voice area in cochlear-implanted deaf patients[J].Hum Brain Mapp,2012,33(8):1929-1940.

7 Ferrari M,Quaresima V.A brief review on the history of human functional near-infrared spectroscopy (fNIRS) development and fields of application[J].Neuroimage,2012,63(2):921-935.

8 Ayaz H,Onaral B,Izzetoglu K,et al.Continuous monitoring of brain dynamics with functional near infrared spectroscopy as a tool for neuroergonomic research:empirical examples and a technological development[J].Front Hum Neurosci,2013,7:871.

9 Tseng YL,Lu CF,Wu SM.A functional near-infrared spectroscopy study of state anxiety and auditory working memory load[J].Front Hum Neurosci,2018,12:313.

10 Deppermann S,Vennewald N,Diemer J,et al.Neurobiological and clinical effects of fNIRS-controlled rTMS in patients with panic disorder/agoraphobia during cognitive-behavioural therapy[J].Neuroimage Clin,2017,16:668-677.

11 Crosson B,Ford A,McGregor KM,et al.Functional imaging and related techniques:an introduction for rehabilitation researchers[J].J Rehabil Res Dev,2010,47(2):vii-xxxiv.

12 Dewey RS,Hartley DE.Cortical cross-modal plasticity following deafness measured using functional near-infrared spectroscopy[J].Hear Res,2015,325:55-63

13 Chen LC,Stropahl M,Schonwiesner M,et al.Enhanced visual adaptation in cochlear implant users revealed by concurrent EEG-fNIRS[J].Neuroimage,2017,146:600-608.

14 Bortfeld H.Functional near-infrared spectroscopy as a tool for assessing speech and spoken language processing in pediatric and adult cochlear implant users[J].Dev Psychobiol,2019,61(3):430-443.

15 Sevy AB,Bortfeld H,Huppert TJ,et al.Neuroimaging with near-infrared spectroscopy demonstrates speech-evoked activity in the auditory cortex of deaf children following cochlear implantation[J].Hear Res,2010,270(1-2):39-47.

16 Pollonini L,Olds C,Abaya H,et al.Auditory cortex activation to natural speech and simulated cochlear implant speech measured with functional near-infrared spectroscopy[J].Hear Res,2014,309:84-93.

17 Olds C,Pollonini L,Abaya H,et al.Cortical activation patterns correlate with speech understanding after cochlear implantation[J].Ear Hear,2016,37(3):e160-172.

18 Anderson CA,Wiggins IM,Kitterick PT,et al.Adaptive benefit of cross-modal plasticity following cochlear implantation in deaf adults[J].Proc Natl Acad Sci USA,2017,114(38):10256-10261.

19 Anderson CA,Wiggins IM,Kitterick PT,et al.Pre-operative brain imaging using functional near-infrared spectroscopy helps predict cochlear implant outcome in deaf adults[J].J Assoc Res Otolaryngol,2019,20(5):511-528.

20 Stropahl M,Debener S.Auditory cross-modal reorganization in cochlear implant users indicates audio-visual integration[J].Neuroimage Clin,2017,16:514-523.

21 Armony JL,Aube W,Angulo-Perkins A,et al.The specificity of neural responses to music and their relation to voice processing:an fMRI-adaptation study[J].Neurosci Lett,2015,593:35-39.

22 Chen LC,Sandmann P,Thorne JD,et al.Cross-modal functional reorganization of visual and auditory cortex in adult cochlear implant users identified with fNIRS[J].Neural Plast,2016,2016:4382656.

23 Basura GJ,Hu XS,Juan JS,et al.Human central auditory plasticity:a review of functional near-infrared spectroscopy (fNIRS) to measure cochlear implant performance and tinnitus perception[J].Laryngoscope Investig Otolaryngol,2018,3(6):463-472.

24 Gagnon L,Yucel MA,Dehaes M,et al.Quantification of the cortical contribution to the NIRS signal over the motor cortex using concurrent NIRS-fMRI measurements[J].Neuroimage,2012,59(4):3933-3940.

25 Tachtsidis I,Scholkmann F.False positives and false negatives in functional near-infrared spectroscopy:issues,challenges,and the way forward[J].Neurophotonics,2016,3(3):031405.

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刘昊天刘玉和