DocumentCode
1292177
Title
Near-Infrared Brain Volumetric Imaging Method: A Monte Carlo Study
Author
Ching-Cheng Chuang ; Pei-Ning Wang ; Wei-Ta Chen ; Tsuo-Hung Lan ; Chung-Ming Chen ; Yao-Sheng Hsieh ; Chun-yang Wang ; Chia-Wei Sun
Author_Institution
Inst. of Biomed. Eng., Nat. Taiwan Univ., Taipei, Taiwan
Volume
18
Issue
3
fYear
2012
Firstpage
1122
Lastpage
1129
Abstract
The symptom of brain volumetric changes may provide significant biomarker to predict progressive dementia. The brain volumetric changes of prefrontal cortex are highly associated with many neurodegenerative diseases. Besides, brain atrophy reveals the expanded interhemispheric fissure and the concomitant increasing cerebrospinal fluid volume. Thus, the quantitative assessment of brain volumetric changes is an important consideration for clinical studies of neurodegenerative diseases. In this study, we first proposed an approach that uses near-infrared brain volumetric imaging to detect brain volumetric changes. The healthy, aged, and typical Alzheimer´s disease (AD) brains were modeled with different characterization of brain volumetric changes from in vivo MRI data based on time-resolved 3-D Monte Carlo simulation. In the results, the significant difference of prefrontal cortex structure can be observed among healthy, aged, and AD brain with various source-detector separations in sagittal view. Our study shows that the near-infrared brain volumetric imaging can be an indicator of brain atrophy for clinical application of neurodegenerative diseases with patient-oriented measurement.
Keywords
Monte Carlo methods; biomedical MRI; biomedical measurement; biomedical optical imaging; brain; diseases; neurophysiology; AD brain; Alzheimers disease; brain atrophy; brain volumetric changes; cerebrospinal fluid volume; in vivo MRI data; interhemispheric fissure; near-infrared brain volumetric imaging method; neurodegenerative diseases; patient-oriented measurement; prefrontal cortex; prefrontal cortex structure; progressive dementia; source-detector separations; time-resolved 3D Monte Carlo simulation; Aging; Atrophy; Brain modeling; Magnetic resonance imaging; Monte Carlo methods; Optical imaging; Photonics; Brain atrophy; Monte Carlo simulation; brain volumetric imaging (BVI); diffuse optical imaging (DOI); near-infrared spectroscopy (NIRS); prefrontal cortex;
fLanguage
English
Journal_Title
Selected Topics in Quantum Electronics, IEEE Journal of
Publisher
ieee
ISSN
1077-260X
Type
jour
DOI
10.1109/JSTQE.2011.2163927
Filename
5976997
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