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High-Resolution Optical Functional Mapping of the Human Somatosensory Cortex

Non-invasive optical imaging of brain function has been promoted in a number of fields in which functional magnetic resonance imaging (fMRI) is limited due to constraints induced by the scanning environment. Beyond physiological and psychological research, bedside monitoring and neurorehabilitation...

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Autores principales: Koch, Stefan P., Habermehl, Christina, Mehnert, Jan, Schmitz, Christoph H., Holtze, Susanne, Villringer, Arno, Steinbrink, Jens, Obrig, Hellmuth
Formato: Texto
Lenguaje:English
Publicado: Frontiers Research Foundation 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2899520/
https://www.ncbi.nlm.nih.gov/pubmed/20616883
http://dx.doi.org/10.3389/fnene.2010.00012
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author Koch, Stefan P.
Habermehl, Christina
Mehnert, Jan
Schmitz, Christoph H.
Holtze, Susanne
Villringer, Arno
Steinbrink, Jens
Obrig, Hellmuth
author_facet Koch, Stefan P.
Habermehl, Christina
Mehnert, Jan
Schmitz, Christoph H.
Holtze, Susanne
Villringer, Arno
Steinbrink, Jens
Obrig, Hellmuth
author_sort Koch, Stefan P.
collection PubMed
description Non-invasive optical imaging of brain function has been promoted in a number of fields in which functional magnetic resonance imaging (fMRI) is limited due to constraints induced by the scanning environment. Beyond physiological and psychological research, bedside monitoring and neurorehabilitation may be relevant clinical applications that are yet little explored. A major obstacle to advocate the tool in clinical research is insufficient spatial resolution. Based on a multi-distance high-density optical imaging setup, we here demonstrate a dramatic increase in sensitivity of the method. We show that optical imaging allows for the differentiation between activations of single finger representations in the primary somatosensory cortex (SI). Methodologically our findings confirm results in a pioneering study by Zeff et al. (2007) and extend them to the homuncular organization of SI. After performing a motor task, eight subjects underwent vibrotactile stimulation of the little finger and the thumb. We used a high-density diffuse-optical sensing array in conjunction with optical tomographic reconstruction. Optical imaging disclosed three discrete activation foci one for motor and two discrete foci for vibrotactile stimulation of the first and fifth finger, respectively. The results were co-registered to the individual anatomical brain anatomy (MRI) which confirmed the localization in the expected cortical gyri in four subjects. This advance in spatial resolution opens new perspectives to apply optical imaging in the research on plasticity notably in patients undergoing neurorehabilitation.
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spelling pubmed-28995202010-07-08 High-Resolution Optical Functional Mapping of the Human Somatosensory Cortex Koch, Stefan P. Habermehl, Christina Mehnert, Jan Schmitz, Christoph H. Holtze, Susanne Villringer, Arno Steinbrink, Jens Obrig, Hellmuth Front Neuroenergetics Neuroscience Non-invasive optical imaging of brain function has been promoted in a number of fields in which functional magnetic resonance imaging (fMRI) is limited due to constraints induced by the scanning environment. Beyond physiological and psychological research, bedside monitoring and neurorehabilitation may be relevant clinical applications that are yet little explored. A major obstacle to advocate the tool in clinical research is insufficient spatial resolution. Based on a multi-distance high-density optical imaging setup, we here demonstrate a dramatic increase in sensitivity of the method. We show that optical imaging allows for the differentiation between activations of single finger representations in the primary somatosensory cortex (SI). Methodologically our findings confirm results in a pioneering study by Zeff et al. (2007) and extend them to the homuncular organization of SI. After performing a motor task, eight subjects underwent vibrotactile stimulation of the little finger and the thumb. We used a high-density diffuse-optical sensing array in conjunction with optical tomographic reconstruction. Optical imaging disclosed three discrete activation foci one for motor and two discrete foci for vibrotactile stimulation of the first and fifth finger, respectively. The results were co-registered to the individual anatomical brain anatomy (MRI) which confirmed the localization in the expected cortical gyri in four subjects. This advance in spatial resolution opens new perspectives to apply optical imaging in the research on plasticity notably in patients undergoing neurorehabilitation. Frontiers Research Foundation 2010-06-14 /pmc/articles/PMC2899520/ /pubmed/20616883 http://dx.doi.org/10.3389/fnene.2010.00012 Text en Copyright © 2010 Koch, Habermehl, Mehnert, Schmitz, Holtze, Villringer, Steinbrink and Obrig. http://www.frontiersin.org/licenseagreement This is an open-access article subject to an exclusive license agreement between the authors and the Frontiers Research Foundation, which permits unrestricted use, distribution, and reproduction in any medium, provided the original authors and source are credited.
spellingShingle Neuroscience
Koch, Stefan P.
Habermehl, Christina
Mehnert, Jan
Schmitz, Christoph H.
Holtze, Susanne
Villringer, Arno
Steinbrink, Jens
Obrig, Hellmuth
High-Resolution Optical Functional Mapping of the Human Somatosensory Cortex
title High-Resolution Optical Functional Mapping of the Human Somatosensory Cortex
title_full High-Resolution Optical Functional Mapping of the Human Somatosensory Cortex
title_fullStr High-Resolution Optical Functional Mapping of the Human Somatosensory Cortex
title_full_unstemmed High-Resolution Optical Functional Mapping of the Human Somatosensory Cortex
title_short High-Resolution Optical Functional Mapping of the Human Somatosensory Cortex
title_sort high-resolution optical functional mapping of the human somatosensory cortex
topic Neuroscience
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2899520/
https://www.ncbi.nlm.nih.gov/pubmed/20616883
http://dx.doi.org/10.3389/fnene.2010.00012
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