Enhancing BOLD response in the auditory system by neurophysiologically tuned fMRI sequence

被引:59
作者
Seifritz, E
Di Salle, F
Esposito, F
Herdener, M
Neuhoff, JG
Scheffler, K
机构
[1] Univ Bern, Univ Hosp Clin Psychiat, CH-3000 Bern, Switzerland
[2] Univ Basel, Dept Psychiat, CH-4025 Basel, Switzerland
[3] Univ Pisa, Dept Neurosci, I-56126 Pisa, Italy
[4] Univ Naples Federico II, Dept Neurol Sci, I-80127 Naples, Italy
[5] Coll Wooster, Dept Psychol, Wooster, OH 44691 USA
[6] Univ Basel, Dept Med Radiol, MR Phys, CH-4031 Basel, Switzerland
关键词
D O I
10.1016/j.neuroimage.2005.08.029
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Auditory neuroscience has not tapped fMRI's full potential because of acoustic scanner noise emitted by the gradient switches of conventional echoplanar fMRI sequences. The scanner noise is pulsed, and auditory cortex is particularly sensitive to pulsed sounds. Current fMRI approaches to avoid stimulus-noise interactions are temporally inefficient. Since the sustained BOLD response to pulsed sounds decreases with repetition rate and becomes minimal with impulsed sounds, we developed an fMRI sequence emitting continuous rather than pulsed gradient sound by implementing a novel quasi-continuous gradient switch pattern. Compared to conventional fMRI, continuous-sound fMRI reduced auditory cortex BOLD baseline and increased BOLD amplitude with graded sound stimuli, short sound events, and sounds as complex as orchestra music with preserved temporal resolution. Response in subcortical auditory nuclei was enhanced, but not the response to light in visual cortex. Finally, tonotopic mapping using continuous-sound fMRI demonstrates that enhanced functional signal-to-noise in BOLD response translates into improved spatial separability of specific sound representations. (c) 2005 Elsevier Inc. All rights reserved.
引用
收藏
页码:1013 / 1022
页数:10
相关论文
共 45 条
[1]   Differential synaptic processing separates stationary from transient inputs to the auditory cortex [J].
Atzori, M ;
Lei, S ;
Evans, DIP ;
Kanold, PO ;
Phillips-Tansey, E ;
McIntyre, O ;
McBain, CJ .
NATURE NEUROSCIENCE, 2001, 4 (12) :1230-1237
[2]   Functional MRI of brain activation induced by scanner acoustic noise [J].
Bandettini, PA ;
Jesmanowicz, A ;
Van Kylen, J ;
Birn, RM ;
Hyde, JS .
MAGNETIC RESONANCE IN MEDICINE, 1998, 39 (03) :410-416
[3]   Event-related fMRI of the auditory cortex [J].
Belin, P ;
Zatorre, RJ ;
Hoge, R ;
Evans, AC ;
Pike, B .
NEUROIMAGE, 1999, 10 (04) :417-429
[4]   The MR tomograph as a sound generator:: fMRI tool for the investigation of the auditory cortex [J].
Bilecen, D ;
Radü, EW ;
Scheffler, K .
MAGNETIC RESONANCE IN MEDICINE, 1998, 40 (06) :934-937
[5]   Linear systems analysis of functional magnetic resonance imaging in human V1 [J].
Boynton, GM ;
Engel, SA ;
Glover, GH ;
Heeger, DJ .
JOURNAL OF NEUROSCIENCE, 1996, 16 (13) :4207-4221
[6]   Calibrated functional MRI: Mapping the dynamics of oxidative metabolism [J].
Davis, TL ;
Kwong, KK ;
Weisskoff, RM ;
Rosen, BR .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1998, 95 (04) :1834-1839
[7]   Reduction of gradient acoustic noise in MRI using SENSE-EPI [J].
de Zwart, JA ;
van Gelderen, P ;
Kellman, P ;
Duyn, JH .
NEUROIMAGE, 2002, 16 (04) :1151-1155
[8]   OBSERVATION OF A FAST-RESPONSE IN FUNCTIONAL MR [J].
ERNST, T ;
HENNIG, J .
MAGNETIC RESONANCE IN MEDICINE, 1994, 32 (01) :146-149
[9]   Mirror-symmetric tonotopic maps in human primary auditory cortex [J].
Formisano, E ;
Kim, DS ;
Di Salle, F ;
van de Moortele, PF ;
Ugurbil, K ;
Goebel, R .
NEURON, 2003, 40 (04) :859-869
[10]  
Friston K.J., 1994, Human Brain Mapping, V2, P189, DOI DOI 10.1002/HBM.460020402