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The neurobiology of receptive-expressive language interdependence

Published online by Cambridge University Press:  24 June 2013

Anthony Steven Dick
Affiliation:
Department of Psychology, Florida International University, Miami, FL 33199. adick@fiu.eduwww.fiu.edu/~adick
Michael Andric
Affiliation:
Center for Mind/Brain Sciences (CIMeC), The University of Trento, Trento 38122, Italy. michael.andric@unitn.itmichaelandric.tumblr.com

Abstract

With a focus on receptive language, we examine the neurobiological evidence for the interdependence of receptive and expressive language processes. While we agree that there is compelling evidence for such interdependence, we suggest that Pickering & Garrod's (P&G's) account would be enhanced by considering more-specific situations in which their model does, and does not, apply.

Type
Open Peer Commentary
Copyright
Copyright © Cambridge University Press 2013 

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References

Andric, M. & Small, S. L. (2012) Gesture's neural language. Frontiers in Psychology 3:99. DOI: 10.3389/fpsyg.2012.00099.CrossRefGoogle ScholarPubMed
Bedny, M. & Caramazza, A. (2011) Perception, action, and word meanings in the human brain: The case from action verbs. Annals of the New York Academy of Sciences 1224:8195. DOI:10.1111/j.1749-6632.2011.06013.x.Google Scholar
Binder, J. R., Desai, R. H., Graves, W. W. & Conant, L. L. (2009) Where is the semantic system? A critical review and meta-analysis of 120 functional neuroimaging studies. Cerebral Cortex 19:2767–96.Google Scholar
Callan, D. E., Jones, J. A., Callan, A. M. & Akahane-Yamada, R. (2004) Phonetic perceptual identification by native- and second-language speakers differentially activates brain regions involved with acoustic phonetic processing and those involved with articulatory-auditory/orosensory internal models. NeuroImage 22:1182–94.CrossRefGoogle ScholarPubMed
Cappa, S. F. & Pulvermüller, F. (2012) Cortex special issue: Language and the motor system. Cortex 48(7):785.Google Scholar
Chandrasekaran, C., Trubanova, A., Stillittano, S., Caplier, A. & Ghazanfar, A. A. (2009) The natural statistics of audiovisual speech. PLoS Computational Biology 5(7):e1000436. DOI:10.1371/journal.pcbi.1000436.Google Scholar
D'Ausilio, A., Pulvermüller, F., Salmas, P., Bufalari, I., Begliomini, C. & Fadiga, L. (2009) The motor somatotopy of speech perception. Current Biology 19:381–85.Google Scholar
Dick, A. S., Goldin-Meadow, S., Hasson, U., Skipper, J. I. & Small, S. L. (2009) Co-speech gestures influence neural activity in brain regions associated with processing semantic information. Human Brain Mapping 30:3509–26.Google Scholar
Dick, A. S., Goldin-Meadow, S., Solodkin, A. & Small, S. L. (2012) Gesture in the developing brain. Developmental Science 15:165–80.Google Scholar
Dick, A. S., Solodkin, A. & Small, S. L. (2010) Neural development of networks for audiovisual speech comprehension. Brain and Language 114:101–14.CrossRefGoogle ScholarPubMed
Dick, A. S. & Tremblay, P. (2012) Beyond the arcuate fasciculus: Consensus and controversy in the connectional anatomy of language. Brain: A Journal of Neurology 135:3529–50. doi: 10.1093/brain/aws222.Google Scholar
Eickhoff, S. B., Heim, S., Zilles, K. & Amunts, K. (2009) A systems perspective on the effective connectivity of overt speech production. Philosophical Transactions of the Royal Society A: Mathematical, Physical, and Engineering Sciences 367(1896):2399–421. DOI:10.1098/rsta.2008.0287.CrossRefGoogle ScholarPubMed
Fischer, M. H. & Zwaan, R. A. (2008) Embodied language: A review of the role of the motor system in language comprehension. Quarterly Journal of Experimental Psychology (2006) 61(6):825–50. DOI:10.1080/17470210701623605.CrossRefGoogle Scholar
Glenberg, A. M. (2011) How reading comprehension is embodied and why that matters. International Electronic Journal of Elementary Education 4:518.Google Scholar
Glenberg, A. M. & Gallese, V. (2012) Action-based language: A theory of language acquisition, comprehension, and production. Cortex 48(7):905–22. DOI:10.1016/j.cortex.2011.04.010.CrossRefGoogle Scholar
Green, A., Straube, B., Weis, S., Jansen, A., Willmes, K., Konrad, K. & Kircher, T. (2009) Neural integration of iconic and unrelated coverbal gestures: A functional MRI study. Human Brain Mapping 30:3309–24.Google Scholar
Hasson, U., Skipper, J. I., Nusbaum, H. C. & Small, S. L. (2007) Abstract coding of audiovisual speech: Beyond sensory representation. Neuron 56:1116–26.Google Scholar
Hickok, G. (2009a) Eight problems for the mirror neuron theory of action understanding in monkeys and humans. Journal of Cognitive Neuroscience 21(7):1229–43. DOI: 10.1162/jocn.2009.21189.Google Scholar
Hickok, G. (2009b) The functional neuroanatomy of language. Physics of Life Reviews 6(3):121–43.CrossRefGoogle ScholarPubMed
Hickok, G., Houde, J. & Rong, F. (2011) Sensorimotor integration in speech processing: Computational basis and neural organization. Neuron 69(3):407–22. DOI:10.1016/j.neuron.2011.01.019.Google Scholar
Hickok, G. & Poeppel, D. (2000) Towards a functional neuroanatomy of speech perception. Trends in Cognitive Sciences 4(4):131–38.CrossRefGoogle ScholarPubMed
Hickok, G. & Poeppel, D. (2004) Dorsal and ventral streams: A framework for understanding aspects of the functional anatomy of language. Cognition 92(1–2):6799.CrossRefGoogle ScholarPubMed
Hickok, G. & Poeppel, D. (2007) The cortical organization of speech processing. Nature Reviews Neuroscience 8(5):393402.Google Scholar
Holle, H., Gunter, T. C., Rüschemeyer, S. A., Hennenlotter, A. & Iacoboni, M. (2008) Neural correlates of the processing of co-speech gestures. NeuroImage 39(4):2010–24.Google Scholar
Iacoboni, M. (2008) The role of premotor cortex in speech perception: Evidence from fmri and rtms. Journal of Physiology (Paris), 102:3134.Google Scholar
Mahon, B. Z. & Caramazza, A. (2009) Concepts and categories: A cognitive neuropsychological perspective. Annual Review of Psychology 60:2751. DOI:10.1146/annurev.psych.60.110707.163532.Google Scholar
Meister, I. G., Wilson, S. M., Deblieck, C., Wu, A. D. & Iacoboni, M. (2007) The essential role of premotor cortex in speech perception. Current Biology 17:1692–96.Google Scholar
Price, C. J. (2010) The anatomy of language: A review of 100 fMRI studies published in 2009. Annals of the New York Academy of Sciences 1191(1):6288.Google Scholar
Price, C. J. (2012) A review and synthesis of the first 20 years of PET and fMRI studies of heard speech, spoken language and reading. NeuroImage 62(2):816–47. DOI: 10.1016/j.neuroimage.2012.04.062.Google Scholar
Pulvermüller, F., Huss, M., Kherif, F., Moscoso del Prado Martin, F., Hauk, O., & Shtyrov, Y. (2006) Motor cortex maps articulatory features of speech sounds. Proceedings of the National Academy of Sciences 103(20):7865–70.Google Scholar
Rauschecker, J. P. (2011) An expanded role for the dorsal auditory pathway in sensorimotor control and integration. Hearing Research 271(1–2):1625. DOI:10.1016/j.heares.2010.09.001.Google Scholar
Rauschecker, J. P. & Scott, S. K. (2009) Maps and streams in the auditory cortex: Nonhuman primates illuminate human speech processing. Nature Neuroscience 12(6):718–24. DOI:10.1038/nn.2331.Google Scholar
Rauschecker, J. P. & Tian, B. (2000) Mechanisms and streams for processing of “what” and “where” in auditory cortex. Proceedings of the National Academy of Sciences 97(22):11800.Google Scholar
Rogalsky, C. & Hickok, G. (2011) The role of Broca's area in sentence comprehension. Journal of Cognitive Neuroscience 23(7):1664–80.Google Scholar
Sato, M., Buccino, G., Gentilucci, M. & Cattaneo, L. (2010) On the tip of the tongue: Modulation of the primary motor cortex during audiovisual speech perception. Speech Communication 52(6):533–41.CrossRefGoogle Scholar
Sato, M., Tremblay, P. & Gracco, V. L. (2009) A mediating role of the premotor cortex in phoneme segmentation. Brain and Language 111(1):17. DOI:10.1016/j.bandl.2009.03.002.CrossRefGoogle ScholarPubMed
Skipper, J. I., Goldin-Meadow, S., Nusbaum, H. C. & Small, S. L. (2007a) Speech-associated gestures, Broca's area, and the human mirror system. Brain and Language 101(3):260–77.Google Scholar
Skipper, J. I., Goldin-Meadow, S., Nusbaum, H. C. & Small, S. L. (2009) Gestures orchestrate brain networks for language understanding. Current Biology 19:17.Google Scholar
Skipper, J. I., Nusbaum, H. C. & Small, S. L. (2005) Listening to talking faces: Motor cortical activation during speech perception. NeuroImage 25(1):7689.Google Scholar
Skipper, J. I., van Wassenhove, V., Nusbaum, H.C., & Small, S. L. (2007b) Hearing lips and seeing voices: How cortical areas supporting speech production mediate audiovisual speech perception. Cerebral Cortex 17:2387–99.CrossRefGoogle ScholarPubMed
Straube, B., Green, A., Bromberger, B. & Kircher, T. (2011) The differentiation of iconic and metaphoric gestures: Common and unique integration processes. Human Brain Mapping 32(4):520–33. DOI: 10.1002/hbm.21041.Google Scholar
Tremblay, P., Sato, M. & Small, S. L. (2012) TMS-induced modulation of action sentence priming in the ventral premotor cortex. Neuropsychologia 50(2):319–26. DOI:10.1016/j.neuropsychologia.2011.12.00.Google Scholar
Tremblay, P. & Small, S. L. (2011) On the context-dependent nature of the contribution of the ventral premotor cortex to speech perception, NeuroImage 57(4):1561–71.Google Scholar
Ungerleider, L. G. & Haxby, J. V. (1994) “What” and “where” in the human brain. Current Opinion in Neurobiology 4(2):157–65.Google Scholar
van Wassenhove, V., Grant, K. W. & Poeppel, D. (2005) Visual speech speeds up the neural processing of auditory speech. Procedings of the National Academy of Sciences 102(4):1181–86.CrossRefGoogle ScholarPubMed
Vigneau, M., Beaucousin, V., Hervé, P. Y., Duffau, H., Crivello, F., Houdé, O., Mazoyer, B. & Tzourio-Mazoyer, N. (2006) Meta-analyzing left hemisphere language areas: Phonology, semantics, and sentence processing. NeuroImage 30(4):1414–32. DOI: 10.1016/j.neuroimage.2005.11.002.Google Scholar
Watkins, K., Strafella, A. P. & Paus, T. (2003) Seeing and hearing speech excites the motor system involved in speech production. Neuropsychologia 41:989–94.Google Scholar
Willems, R. M., Özyürek, A. & Hagoort, P. (2007) When language meets action: The neural integration of gesture and speech. Cerebral Cortex 17(10):2322.Google Scholar
Willems, R. M., Özyürek, A. & Hagoort, P. (2009) Differential roles for left inferior frontal and superior temporal cortex in multimodal integration of action and language. NeuroImage 47:19922004.CrossRefGoogle ScholarPubMed
Wilson, S. M. & Iacoboni, M. (2006) Neural responses to non-native phonemes varying in producibility: Evidence for the sensorimotor nature of speech perception. Neuroimage 33(1):316–25.Google Scholar
Wilson, S. M., Saygin, A. P., Sereno, M. I. & Iacoboni, M. (2004) Listening to speech activates motor areas involved in speech production. Nature Neuroscience 7(7):701702.Google Scholar
Xu, J., Gannon, P. J., Emmorey, K., Smith, J. F. & Braun, A. R. (2009) Symbolic gestures and spoken language are processed by a common neural system. Proceedings of the National Academy of Sciences 106(49):20664–69.Google Scholar