功能性近红外光谱技术应用于儿童言语语言障碍神经机制研究的进展
Advance in the application of functional near-infrared spectroscopy in the study of neural mechanisms of speech and language disorders in children
李妙;刘巧云
1:广州新华学院听力与言语科学系
2:华东师范大学附属妇幼保健院
3:华东师范大学教育学部康复科学系





[1] KEY A P,D'AMBROSE S K.Speech Processing in autism spectrum disorder:an integrative review of auditory neurophysiology findings[J].J Speech Lang Hear Res,2021,64(11):4192-4212.
[2] MEI C,REILLY S,REDDIHOUGH D,et al.Language outcomes of children with cerebral palsy aged 5 years and 6 years:a population-based study[J].Dev Med Child Neurol,2016,58(6):605-611.
[3] REITER R,PICKHARD A,BROSCH S.Hearing impairment and language development[J].Laryngorhinootologie,2012,91(9):550-559.
[4] HICKOK G,POEPPEL D.The cortical organization of speech processing[J].Nat Rev Neurosci,2007,8(5):393-402.
[5] KOZBERG M,HILLMAN E.Chapter 10-neurovascular coupling and energy metabolism in the developing brain[M].Masamoto K,Hirase H,Yamada K.Progress in Brain Research.Elsevier,2016:213-242.
[6] SCHOLKMANN F,KLEISER S,METZ A J,et al.A review on continuous wave functional near-infrared spectroscopy and imaging instrumentation and methodology[J].Neuroimage,2014,85(Pt 1):6-27.
[7] 刘昊天,刘玉和.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[J].听力学及言语疾病杂志,2021,29(5):579-582.
[8] BOAS D A,ELWELL C E,FERRARI M,et al.Twenty years of functional near-infrared spectroscopy:introduction for the special issue[J].Neuroimage,2014,85(1):1-5.
[9] ANDREU-PEREZ J,EMBERSON L L,KIANI M,et al.Explainable artificial intelligence based analysis for interpreting infant fNIRS data in developmental cognitive neuroscience[J].Commun Biol,2021,4(1):1077.DOI:10.1038/S42003-021-02534-y
[10] CHEN W L,WAGNER J,HEUGEL N,et al.Functional near-infrared spectroscopy and its clinical application in the field of neuroscience:advances and future directions[J].Front Neurosci,2020,14:724.DOI:10.3389/fnins.2020.00724
[11] PENG C,HOU X.Applications of functional near-infrared spectroscopy (fNIRS) in neonates[J].Neurosci Res,2021,170:18-23.DOI:10.1016/j.neures.2020.11.003
[12] 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.
[13] 龙越,贾高鼎,刘一迪,等.功能性近红外脑成像研究双侧中度以上听力损失对婴儿大脑皮层功能的影响[J].听力学及言语疾病杂志,2020,28(5):492-497.
[14] HAMALAINEN J A,SALMINEN H K,LEPPANEN P H.Basic auditory processing deficits in dyslexia:systematic review of the behavioral and event-related potential/field evidence[J].J Learn Disabil,2013,46(5):413-427.
[15] FERRY A L,FLO A,BRUSINI P,et al.On the edge of language acquisition:inherent constraints on encoding multisyllabic sequences in the neonate brain[J].Dev Sci,2016,19(3):488-503.
[16] GERVAIN J,BERENT I,WERKER J F.Binding at birth:the newborn brain detects identity relations and sequential position in speech[J].J Cogn Neurosci,2012,24(3):564-574.
[17] PENA M,MAKI A,KOVACIC D,et al.Sounds and silence:an optical topography study of language recognition at birth[J].Proc Natl Acad Sci USA,2003,100(20):11702-11705.
[18] PECUKONIS M,PERDUE K L,WONG J,et al.Exploring the relation between brain response to speech at 6-months and language outcomes at 24-months in infants at high and low risk for autism spectrum disorder:a preliminary functional near-infrared spectroscopy study[J].Dev Cogn Neurosci,2021,47:100897.DOI:10.1016/j.dcn.2022.100897
[19] EDWARDS L A,WAGNER J B,TAGER-FLUSBERG H,et al.Differences in neural correlates of speech perception in 3 month olds at high and low risk for autism spectrum disorder[J].J Autism Dev Disord,2017,47(10):3125-3138.
[20] KEEHN B,WAGNER J B,TAGER-FLUSBERG H,et al.Functional connectivity in the first year of life in infants at-risk for autism:a preliminary near-infrared spectroscopy study[J].Front Hum Neurosci,2013,7:444.DOI:10.3389/fnhum.2013.00444
[21] LI Y,YU D.Weak network efficiency in young children with autism spectrum disorder:evidence from a functional near-infrared spectroscopy study[J].Brain Cogn,2016,108:47-55.DOI:10.1016/j.bandc.2016.07.006
[22] LI J,QIU L,XU L,et al.Characterization of autism spectrum disorder with spontaneous hemodynamic activity[J].Biomed Opt Express,2016,7(10):3871-3881.
[23] BINDER J R.Current controversies on Wernicke's area and its role in language[J].Curr Neurol Neurosci Rep,2017,17(8):58.DOI:10.1007/S11910-017-0764-8
[24] VANNASING P,FLOREA O,GONZALEZ-FRANKENBERGER B,et al.Distinct hemispheric specializations for native and non-native languages in one-day-old newborns identified by fNIRS[J].Neuropsychologia,2016,84:63-69.DOI:10.1016/j.neuro psychologia.2016.01.038
[25] ZHANG D,CHEN Y,HOU X,et al.Near-infrared spectroscopy reveals neural perception of vocal emotions in human neonates[J].Hum Brain Mapp,2019,40(8):2434-2448.
[26] MINAGAWA-KAWAI Y,NAOI N,KIKUCHI N,et al.Cerebral laterality for phonemic and prosodic cue decoding in children with autism[J].Neuroreport,2009,20(13):1219-1224.
[27] SATO Y,MORI K,KOIZUMI T,et al.Functional lateralization of speech processing in adults and children who stutter[J].Front Psychol,2011,2:70.DOI:10.3389/fpsyg.2011.00070
[28] WANG Y,LIU L,ZHANG Y,et al.The neural processing of vocal emotion after hearing reconstruction in prelingual deaf children:a functional near-infrared spectroscopy brain imaging study[J].Front Neurosci,2021,15:705741.DOI:10.3389/fnins.2021.705741
[29] 雷震,毕蓉,莫李澄,等.外显和内隐情绪韵律加工的脑机制:近红外成像研究[J].心理学报,2021,53(1):15-25.
[30] KNOOP-VAN C C,SEGERS E,VERHOEVEN L.How phonological awareness mediates the relation between working memory and word reading efficiency in children with dyslexia[J].Dyslexia,2018,24(2):156-169.
[31] VARGA V,TOTH D,AMORA K K,et al.ERP correlates of altered orthographic-phonological processing in dyslexia[J].Front Psychol,2021,12:723404.DOI:10.3389/fpsyg.2021.723404
[32] POEPPEL D.The analysis of speech in different temporal integration windows:cerebral lateralization as “asymmetric sampling in time”[J].Speech Communication,2003,41(1):245-255.
[33] CUTINI S,SZUCS D,MEAD N,et al.Atypical right hemisphere response to slow temporal modulations in children with developmental dyslexia[J].Neuroimage,2016,143:40-49.DOI:10.1016/j.neuroimage.2016.08.012
[34] SONG R,ZHANG J,WANG B,et al.A near-infrared brain function study of Chinese dyslexic children[J].Neurocase,2013,19(4):382-389.
[35] YOO J,YIM D.Relative clause sentence processing in korean-speaking school-aged children with and without speci-fic language impairment[J].J Speech Lang Hear Res,2021,64(2):510-530.
[36] SASAKI M,SCHWARTZ R G,HISANO M,et al.Relative clause sentence comprehension by Japanese-speaking children with and without specific language impairment[J].J Speech Lang Hear Res,2021,64(6):1929-1943.
[37] FU G,WAN N J,BAKER J M,et al.A proof of concept study of function-based statistical analysis of fNIRS data:syntax comprehension in children with specific language impairment compared to typically-developing controls[J].Front Behav Neurosci,2016,10:108.DOI:10.3389/fnbeh.2016.00108
[38] DICK F,WULFECK B,KRUPA-KWIATKOWSKI M,et al.The development of complex sentence interpretation in typically developing children compared with children with specific language impairments or early unilateral focal lesions[J].Dev Sci,2004,7(3):360-377.
[39] WITTE R J,LANE J I,DRISCOLL C,et al.Pediatric and adult cochlear implantation[J].Radiographics,2003,23(5):1185-1200.
[40] YEUNG M K,LEE T L,CHAN A S.Frontal lobe dysfunction underlies the differential word retrieval impairment in adolescents with high-functioning autism[J].Autism Res,2019,12(4):600-613.
[41] KAWAKUBO Y,KUWABARA H,WATANABE K,et al.Impaired prefrontal hemodynamic maturation in autism and unaffected siblings[J].PLoS One,2009,4(9):e6881.DOI:10.1371/journal.pone.0006881
[42] SPEK A,SCHATORJE T,SCHOLTE E,et al.Verbal fluency in adults with high functioning autism or Asperger syndrome[J].Neuropsychologia,2009,47(3):652-656.
[43] AMUNTS K,WEISS P H,MOHLBERG H,et al.Analysis of neural mechanisms underlying verbal fluency in cytoarchitectonically defined stereotaxic space-the roles of Brodmann areas 44 and 45[J].Neuroimage,2004,22(1):42-56.
[44] JACKSON E S,WIJEAKUMAR S,BEAL D S,et al.Speech planning and execution in children who stutter:preliminary findings from a fNIRS investigation[J].J Clin Neurosci,2021,91:32-42.DOI:10.1016/j.jocn.2021.06.018
[45] HOSSEINI R,WALSH B,TIAN F,et al.An fNIRS-based feature learning and classification framework to distinguish hemodynamic patterns in children who stutter[J].IEEE Trans Neural Syst Rehabil Eng,2018,26(6):1254-1263.
[46] WALSH B,TIAN F,TOURVILLE J A,et al.Hemodynamics of speech production:an fNIRS investigation of children who stutter[J].Sci Rep,2017,7(1):4034.DOI:10.1038/S41598-017-04357-6
[47] CHEN Y,LUO Q,LIANG M,et al.Children's neural sensitivity to prosodic features of natural speech and its significance to speech development in cochlear implanted children[J].Front Neurosci,2022,16:892894.DOI:10.3389/fnins.2022.892894