Dynamic magnetic resonance imaging of human brain activity during primary sensory stimulation.
- 15 June 1992
- journal article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 89 (12), 5675-5679
- https://doi.org/10.1073/pnas.89.12.5675
Abstract
Neuronal activity causes local changes in cerebral blood flow, blood volume, and blood oxygenation. Magnetic resonance imaging (MRI) techniques sensitive to changes in cerebral blood flow and blood oxygenation were developed by high-speed echo planar imaging. These techniques were used to obtain completely noninvasive tomographic maps of human brain activity, by using visual and motor stimulus paradigms. Changes in blood oxygenation were detected by using a gradient echo (GE) imaging sequence sensitive to the paramagnetic state of deoxygenated hemoglobin. Blood flow changes were evaluated by a spin-echo inversion recovery (IR), tissue relaxation parameter T1-sensitive pulse sequence. A series of images were acquired continuously with the same imaging pulse sequence (either GE or IR) during task activation. Cine display of subtraction images (activated minus baseline) directly demonstrates activity-induced changes in brain MR signal observed at a temporal resolution of seconds. During 8-Hz patterned-flash photic stimulation, a significant increase in signal intensity (paired t test; P less than 0.001) of 1.8% +/- 0.8% (GE) and 1.8% +/- 0.9% (IR) was observed in the primary visual cortex (V1) of seven normal volunteers. The mean rise-time constant of the signal change was 4.4 +/- 2.2 s for the GE images and 8.9 +/- 2.8 s for the IR images. The stimulation frequency dependence of visual activation agrees with previous positron emission tomography observations, with the largest MR signal response occurring at 8 Hz. Similar signal changes were observed within the human primary motor cortex (M1) during a hand squeezing task and in animal models of increased blood flow by hypercapnia. By using intrinsic blood-tissue contrast, functional MRI opens a spatial-temporal window onto individual brain physiology.Keywords
This publication has 30 references indexed in Scilit:
- Functional Mapping of the Human Visual Cortex by Magnetic Resonance ImagingScience, 1991
- Oxygenation‐sensitive contrast in magnetic resonance image of rodent brain at high magnetic fieldsMagnetic Resonance in Medicine, 1990
- A Highly Accurate Method of Localizing Regions of Neuronal Activation in the Human Brain with Positron Emission TomographyJournal of Cerebral Blood Flow & Metabolism, 1989
- Perspectives on Cognitive NeuroscienceScience, 1988
- Magnetic resonance imaging of stationary blood: A reviewMedical Physics, 1987
- Regional Asymmetries of Cerebral Blood Flow, Blood Volume, and Oxygen Utilization and Extraction in Normal SubjectsJournal of Cerebral Blood Flow & Metabolism, 1987
- Functional architecture of cortex revealed by optical imaging of intrinsic signalsNature, 1986
- Stimulus rate determines regional brain blood flow in striate cortexAnnals of Neurology, 1985
- Metabolic Mapping of the Brain's Response to Visual Stimulation: Studies in HumansScience, 1981
- The Effects of Changes in Pa CO 2 Cerebral Blood Volume, Blood Flow, and Vascular Mean Transit TimeStroke, 1974