A preliminary study on using reverberant shear wave fields in optical coherence elastography to examine mice brain ex vivo

被引:2
作者
Ge, Gary R. [1 ]
Zvietcovich, Fernando [2 ]
Rolland, Jannick P. [1 ]
Mestre, Humberto [3 ]
Giannetto, Michael [3 ]
Nedergaard, Maiken [3 ]
Parker, Kevin J. [2 ]
机构
[1] Univ Rochester, Inst Opt, Rochester, NY 14627 USA
[2] Univ Rochester, Dept Elect & Comp Engn, 601 Elmwood Ave, Rochester, NY 14627 USA
[3] Univ Rochester, Med Ctr, Dept Neurosurg, Ctr Translat Neuromed, 601 Elmwood Ave, New York, NY 14642 USA
来源
OPTICAL ELASTOGRAPHY AND TISSUE BIOMECHANICS VI | 2019年 / 10880卷
关键词
elastography; optical coherence tomography; reverberant shear wave fields; brain imaging; MAGNETIC-RESONANCE ELASTOGRAPHY; BLOOD-FLOW; TISSUE; TOMOGRAPHY; STIFFNESS;
D O I
10.1117/12.2516039
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
A number of approaches employ optical coherence tomography (OCT) to obtain the mechanical properties of biological tissue. These are generally referred to as optical coherence elastography (OCE), and have demonstrated promising applications with studies in cornea, breast, muscle, skin, and other soft tissues. A particular application of interest is the brain, in which changes in local and global elastic properties may correlate with the onset and progression of degenerative brain diseases. In this preliminary study, mice brains are studied ex vivo and in situ with preservation of the brain/skull anatomical architecture. A small 6 mm diameter portion of the skull is replaced with a glass cap to allow for OCT imaging. Various permutations of source placement for generating shear waves and modes of excitation are evaluated to optimize the experimental setup. The use of reverberant shear wave fields, which takes advantage of inevitable reflections from boundaries and tissue inhomogeneities, allow for estimation of the shear wave speed, which is directly related to the elastic modulus of soft tissues. Preliminary estimates for the shear wave speed in brains of recently deceased mice are obtained. This study demonstrates potential applications in brain OCE ex vivo and in vivo.
引用
收藏
页数:7
相关论文
共 31 条
[1]   Measuring the effects of aging and sex on regional brain stiffness with MR elastography in healthy older adults [J].
Arani, Arvin ;
Murphy, Matthew C. ;
Glaser, Kevin J. ;
Manduca, Armando ;
Lake, David S. ;
Kruse, Scott A. ;
Jack, Clifford R., Jr. ;
Ehman, Richard L. ;
Huston, John, III .
NEUROIMAGE, 2015, 111 :59-64
[2]   Frequency-dependent viscoelastic parameters of mouse brain tissue estimated by MR elastography [J].
Clayton, E. H. ;
Garbow, J. R. ;
Bayly, P. V. .
PHYSICS IN MEDICINE AND BIOLOGY, 2011, 56 (08) :2391-2406
[3]   Transmission, attenuation and reflection of shear waves in the human brain [J].
Clayton, Erik H. ;
Genin, Guy M. ;
Bayly, Philip V. .
JOURNAL OF THE ROYAL SOCIETY INTERFACE, 2012, 9 (76) :2899-2910
[4]  
Doyley M M, 2014, Ultrasound Clin, V9, P1
[5]   TRANSTEMPORAL INVESTIGATION OF BRAIN PARENCHYMA ELASTICITY USING 2-D SHEAR WAVE ELASTOGRAPHY: DEFINITION OF AGE-MATCHED NORMAL VALUES [J].
Ertl, Michael ;
Raasch, Nele ;
Hammel, Gertrud ;
Harter, Katharina ;
Lang, Christopher .
ULTRASOUND IN MEDICINE AND BIOLOGY, 2018, 44 (01) :78-84
[6]   Method for optical coherence elastography of the cornea [J].
Ford, Matthew R. ;
Dupps, William J., Jr. ;
Rollins, Andrew M. ;
Roy, Abhijit Sinha ;
Hu, Zhilin .
JOURNAL OF BIOMEDICAL OPTICS, 2011, 16 (01)
[7]   Optical coherence tomography: An emerging technology for biomedical imaging and optical biopsy [J].
Fujimoto, JG ;
Pitris, C ;
Boppart, SA ;
Brezinski, ME .
NEOPLASIA, 2000, 2 (1-2) :9-25
[8]   Optical coherence tomography in dermatology: technical and clinical aspects [J].
Gambichler, Thilo ;
Jaedicke, Volker ;
Terras, Sarah .
ARCHIVES OF DERMATOLOGICAL RESEARCH, 2011, 303 (07) :457-473
[9]   Magnetic resonance elastography (MRE) of the human brain: technique, findings and clinical applications [J].
Hiscox, Lucy V. ;
Johnson, Curtis L. ;
Barnhill, Eric ;
McGarry, Matt D. J. ;
Huston, John, III ;
van Beek, Edwin J. R. ;
Starr, John M. ;
Roberts, Neil .
PHYSICS IN MEDICINE AND BIOLOGY, 2016, 61 (24) :R401-R437
[10]   Can structure predict function in the human brain? [J].
Honey, Christopher J. ;
Thivierge, Jean-Philippe ;
Sporns, Olaf .
NEUROIMAGE, 2010, 52 (03) :766-776