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Erschienen in: Clinical Oral Investigations 4/2017

24.05.2016 | Original Article

Symmetry of fMRI activation in the primary sensorimotor cortex during unilateral chewing

verfasst von: M. Lotze, M. Domin, B. Kordass

Erschienen in: Clinical Oral Investigations | Ausgabe 4/2017

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Abstract

Objective

Functional magnetic resonance imaging (fMRI) is one of the most advanced techniques to analyze the cerebral effects on many behavior aspects of the oral system such as chewing and mastication. Studies on imaging of the cerebral representation of chewing demonstrated differential results with respect to cortical lateralization during unilateral chewing. The aim of our study is to clarify the effects of cerebral responses during unilateral chewing.

Material and methods

We used fMRI to compare brain activities during occlusal function in centric occlusion on natural teeth and chewing on a gum located on the right or the left teeth in 15 healthy subjects. Group data were performed by Talairach normalization and in addition by an assignment of activation maxima to individual anatomical landmarks in order to avoid possible loss of spatial preciseness of activation sites by normalization procedures.

Results

Evaluation of group data by Talairach normalization revealed representation sites for occlusal movements in bilateral primary (S1) and secondary (S2) somatosensory cortices, primary motor (M1) and premotor cortices, supplementary motor area (SMA) and medial cingulate gyrus, bilateral anterior cerebellar hemispheres and vermis, insula, orbitofrontal cortex, thalamus, and left pallidum. Right-sided chewing showed no differential activation to left-sided chewing, and both showed activation in areas also involved in bilateral occlusion. Both techniques, the one based on group normalization and the one based on an individual evaluation method, revealed remarkable low differences in activation maximum location in the primary motor, the primary and secondary somatosensory cortices, and the anterior cerebellar lobe. All chewing movements tested involved bilateral sensorimotor activation without a significant lateralization of activation intensities.

Conclusion

Overall, a general lateralization of occlusion movements to the dominant side could not be verified in the present study. Chewing on the left or on the right side of teeth makes no difference for brain representation of chewing.

Clinical relevance

The results describe the basic effects of what we can expect by evaluation of cerebral effects of chewing and mastication. Based on these results, clinical fMRI studies can be performed in different patient groups.
Literatur
1.
Zurück zum Zitat Adrian ED (1949) Double representation of the feet in the sensory cortex of the cat. J Physiol 98:16–18 Adrian ED (1949) Double representation of the feet in the sensory cortex of the cat. J Physiol 98:16–18
2.
Zurück zum Zitat Binkofski F, Buccino G, Posse S, Seitz RJ, Rizzolatti G, Freund H (1999) A fronto-parietal circuit for object manipulation in man: evidence from an fMRI-study. Eur J Neurosci 11:3276–3286CrossRefPubMed Binkofski F, Buccino G, Posse S, Seitz RJ, Rizzolatti G, Freund H (1999) A fronto-parietal circuit for object manipulation in man: evidence from an fMRI-study. Eur J Neurosci 11:3276–3286CrossRefPubMed
3.
Zurück zum Zitat Craig AD (2002) How do you feel? Interoception: the sense of the physiological condition of the body. Nat Rev Neurosci 3:655–666CrossRefPubMed Craig AD (2002) How do you feel? Interoception: the sense of the physiological condition of the body. Nat Rev Neurosci 3:655–666CrossRefPubMed
4.
Zurück zum Zitat Doyon J, Owen AM, Petrides M, Sziklas V, Evans AC (1996) Functional anatomy of visuomotor skill learning in human subjects examined with positron emission tomography. Eur J Neurosci 8:637–648CrossRefPubMed Doyon J, Owen AM, Petrides M, Sziklas V, Evans AC (1996) Functional anatomy of visuomotor skill learning in human subjects examined with positron emission tomography. Eur J Neurosci 8:637–648CrossRefPubMed
5.
Zurück zum Zitat Doyon J, Song AW, Karni A, Lalonde F, Adams MM, Ungerleider LG (2002) Experience-dependent changes in cerebellar contributions to motor sequence learning. Proc Natl Acad Sci U S A 99:1017–1022CrossRefPubMedPubMedCentral Doyon J, Song AW, Karni A, Lalonde F, Adams MM, Ungerleider LG (2002) Experience-dependent changes in cerebellar contributions to motor sequence learning. Proc Natl Acad Sci U S A 99:1017–1022CrossRefPubMedPubMedCentral
6.
Zurück zum Zitat Eickhoff SB, Stephan KE, Mohlberg H, Grefkes C, Fink GR, Amunts K, Zilles K (2005) A new SPM toolbox for combining probabilistic cytoarchitectonic maps and functional imaging data. NeuroImage 25(4):1325–1335CrossRefPubMed Eickhoff SB, Stephan KE, Mohlberg H, Grefkes C, Fink GR, Amunts K, Zilles K (2005) A new SPM toolbox for combining probabilistic cytoarchitectonic maps and functional imaging data. NeuroImage 25(4):1325–1335CrossRefPubMed
7.
Zurück zum Zitat Eickhoff S, Lotze M, Wietek B, Amunts K, Enck P, Zilles K (2006) Segregation of visceral and somatosensory afferents. An fMRI and cytoarchitectonic mapping study. NeuroImage 31(3):1004–1014CrossRefPubMed Eickhoff S, Lotze M, Wietek B, Amunts K, Enck P, Zilles K (2006) Segregation of visceral and somatosensory afferents. An fMRI and cytoarchitectonic mapping study. NeuroImage 31(3):1004–1014CrossRefPubMed
8.
Zurück zum Zitat Fanghänel J, Kubein-Meesenburg D, Nägerl H (1991) Control cycles of mandibular movements as a “slow-reflex” model. Dtsch Stomatol 41:246–248PubMed Fanghänel J, Kubein-Meesenburg D, Nägerl H (1991) Control cycles of mandibular movements as a “slow-reflex” model. Dtsch Stomatol 41:246–248PubMed
9.
Zurück zum Zitat Foki T, Geissler A, Gartus A, Pahs G, Deecke L, Beisteiner R (2007) Cortical lateralization of bilateral symmetric chin movements and clinical relevance in tumor patients—a high field BOLD-FMRI study. NeuroImage 37:26–39CrossRefPubMed Foki T, Geissler A, Gartus A, Pahs G, Deecke L, Beisteiner R (2007) Cortical lateralization of bilateral symmetric chin movements and clinical relevance in tumor patients—a high field BOLD-FMRI study. NeuroImage 37:26–39CrossRefPubMed
10.
Zurück zum Zitat Genovese R, Lazar NA, Nichols T (2002) Thresholding of statistical maps in functional neuroimaging using the false discovery rate. NeuroImage 15:870–878CrossRefPubMed Genovese R, Lazar NA, Nichols T (2002) Thresholding of statistical maps in functional neuroimaging using the false discovery rate. NeuroImage 15:870–878CrossRefPubMed
11.
Zurück zum Zitat Grodd W, Hülsmann E, Lotze M, Wildgruber D, Erb M (2001) Sensorimotor mapping of the human cerebellum: fMRI evidence of somatotopic organization. Hum Brain Mapp 13:55–73CrossRefPubMed Grodd W, Hülsmann E, Lotze M, Wildgruber D, Erb M (2001) Sensorimotor mapping of the human cerebellum: fMRI evidence of somatotopic organization. Hum Brain Mapp 13:55–73CrossRefPubMed
12.
Zurück zum Zitat Hirano Y, Obata T, Kashikura K, Nonaka H, Tachibana A, Ikehira H, Onozuka M (2008) Effects of chewing in working memory processing. Neurosci Lett 436:189–192CrossRefPubMed Hirano Y, Obata T, Kashikura K, Nonaka H, Tachibana A, Ikehira H, Onozuka M (2008) Effects of chewing in working memory processing. Neurosci Lett 436:189–192CrossRefPubMed
13.
Zurück zum Zitat Jiang H, Liu H, Liu G, Jin Z, Wang L, Ma J, Li H (2015) Analysis of brain activity involved in chewing-side preference during chewing: an fMRI study. J Oral Rehabil 42:27–33CrossRefPubMed Jiang H, Liu H, Liu G, Jin Z, Wang L, Ma J, Li H (2015) Analysis of brain activity involved in chewing-side preference during chewing: an fMRI study. J Oral Rehabil 42:27–33CrossRefPubMed
14.
Zurück zum Zitat Lotze M, Erb M, Flor H, Hülsmann E, Godde B, Grodd W (2000) fMRI evaluation of somatotopic representation in human primary motor cortex. NeuroImage 11:473–481CrossRefPubMed Lotze M, Erb M, Flor H, Hülsmann E, Godde B, Grodd W (2000) fMRI evaluation of somatotopic representation in human primary motor cortex. NeuroImage 11:473–481CrossRefPubMed
15.
Zurück zum Zitat Mihai PG, von Bohlen Und Halbach O, Lotze M (2013) Differentiation of cerebral representation of occlusion and swallowing with fMRI. Am J Physiol Gastrointest Liver Physiol 304(10):G847–G854CrossRefPubMed Mihai PG, von Bohlen Und Halbach O, Lotze M (2013) Differentiation of cerebral representation of occlusion and swallowing with fMRI. Am J Physiol Gastrointest Liver Physiol 304(10):G847–G854CrossRefPubMed
16.
Zurück zum Zitat Onozuka M, Fujita M, Watanabe K, Hirano Y, Niwa M, Nishiymana K, Saito S (2002) Mapping brain region activity during chewing: a functional magnetic resonance imaging study. J Dent Res 81:743–746CrossRefPubMed Onozuka M, Fujita M, Watanabe K, Hirano Y, Niwa M, Nishiymana K, Saito S (2002) Mapping brain region activity during chewing: a functional magnetic resonance imaging study. J Dent Res 81:743–746CrossRefPubMed
17.
Zurück zum Zitat Ruben J, Schwiemann J, Deuchert M, Meyer R, Krause T, Curio G, Villringer K, Kurth R, Villringer A (2001) Somatotopic organization of human secondary somatosensory cortex. Cereb Cortex 11:463–473CrossRefPubMed Ruben J, Schwiemann J, Deuchert M, Meyer R, Krause T, Curio G, Villringer K, Kurth R, Villringer A (2001) Somatotopic organization of human secondary somatosensory cortex. Cereb Cortex 11:463–473CrossRefPubMed
18.
Zurück zum Zitat Takada T, Miyamoto T (2004) A fronto-parietal network for chewing of gum: a study on human subjects with functional magnetic resonance imaging. Neurosci Lett 360:137–140CrossRefPubMed Takada T, Miyamoto T (2004) A fronto-parietal network for chewing of gum: a study on human subjects with functional magnetic resonance imaging. Neurosci Lett 360:137–140CrossRefPubMed
19.
Zurück zum Zitat Takahashi T, Miyamoto T, Terao A, Yokoyama A (2007) Cerebral activation related to the control of mastication during changes in food hardness. Neuroscience 145(3):791–794 Takahashi T, Miyamoto T, Terao A, Yokoyama A (2007) Cerebral activation related to the control of mastication during changes in food hardness. Neuroscience 145(3):791–794
20.
Zurück zum Zitat Talairach J, Tournoux P (1988) Co-planar stereotaxic atlas of the human brain. Thieme, New York Talairach J, Tournoux P (1988) Co-planar stereotaxic atlas of the human brain. Thieme, New York
21.
Zurück zum Zitat Tamura T, Kanayama T, Yoshida S, Kawasaki T (2003) Functional magnetic resonance imaging of human jaw movements. J Oral Rehabil 30:614–622CrossRefPubMed Tamura T, Kanayama T, Yoshida S, Kawasaki T (2003) Functional magnetic resonance imaging of human jaw movements. J Oral Rehabil 30:614–622CrossRefPubMed
22.
Zurück zum Zitat Wilke M, Lidzba K (2007) LI-tool: a new toolbox to assess lateralization in functional MR-data. J Neurosci Methods 163(1):128–136CrossRefPubMed Wilke M, Lidzba K (2007) LI-tool: a new toolbox to assess lateralization in functional MR-data. J Neurosci Methods 163(1):128–136CrossRefPubMed
Metadaten
Titel
Symmetry of fMRI activation in the primary sensorimotor cortex during unilateral chewing
verfasst von
M. Lotze
M. Domin
B. Kordass
Publikationsdatum
24.05.2016
Verlag
Springer Berlin Heidelberg
Erschienen in
Clinical Oral Investigations / Ausgabe 4/2017
Print ISSN: 1432-6981
Elektronische ISSN: 1436-3771
DOI
https://doi.org/10.1007/s00784-016-1858-4

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