1) Matsuzawa H, Nakada T. Lambda chart analysis and eigenvalue imaging. In: Nakada T, editor. Integrated Human Brain Science: Theory, Method, Application(music). Amsterdam: Elsevier Science. 2000; 219-25
|
|
|
2) Suzuki Y, Matsuzawa H, Nakada T. Feasibility study of single region lambda chart analysis for pyramidal tract physiology. J Neurol. 2003; 250: 1185-9
|
|
|
3) Matsuzawa H, Nakayama N, Nakada T, et al. Isotropic component trace analysis. J Neuroimaging. 2005; 15: 233-9
|
|
|
4) Terajima K, Matsuzawa H, Nakada T, et al. Cell-oriented analysis in vivo using diffusion tensor imaging for normal-appearing brain tissue in multiple sclerosis. Neuroimage. 2007; 37: 1278-85
|
|
|
5) Pajevic S. Color schemes to represent the orientation of anisotropic tissues from diffusion tensor data: application to white matter fiber tract mapping in the human brain. Magn Reson Med. 1999; 42: 526-40
|
|
|
6) Nakada T, Matsuzawa H. Three-dimensional anisotropy contrast magnetic resonance imaging of the rat nervous system: MR axonography. Neurosci Res. 1995; 22: 389-98
|
|
|
7) Nakada T, Matsuzawa H, Kwee IL, et al. Three-dimensional anisotropy contrast periodically rotated overlapping parallel lines with enhanced reconstruction (3DAC PROPELLER) on a 3. 0T system: a new modality for routine clinical neuroimaging. J Neuroimaging. 2006; 16: 206-11
|
|
|
8) Mori S, Crain BJ, Chacko VP, et al. Three-dimensional tracking of axonal projections in the brain by magnetic resonance imaging. Ann Neurol. 1999; 45: 265-9
|
|
|
9) Basser PJ, Pajevic S, Aldroubi A, et al. In vivo fiber tractography using DT-MRI data. Magn Reson Med. 2000; 44: 625-32
|
|
|
10) Terajima K, Nakada T. EZ-tracing: a new ready-to-use algorithm for magnetic resonance tractography. J Neurosci Methods. 2002; 116: 147-55
|
|
|
11) Tuch DS, Reese TG, Wedeen VJ, et al. High angular resolution diffusion imaging reveals intravoxel white matter fiber heterogeneity. Magn Reson Med. 2002; 48: 577-82
|
|
|
12) Tuch DS, Reese TG, Wedeen VJ, et al. Diffusion MRI of complex neural architecture. Neuron. 2003; 40: 885-95
|
|
|
13) Tuch DS. Q-ball imaging. Magn Reson Med. 2004; 52: 1358-72
|
|
|
14) Bashat DB, Duenias VK, Sira LB, et al. Accelerated maturation of white matter in young children with autism: A high b value DWI study. Neuroimage. 2007; 37: 40-7
|
|
|
15) Catani M, Jones DK, Murphy GM, et al. Altered cerebellar feedback projections in Asperger syndrome. Neuroimage. 2008; 41: 1184-91i
|
|
|
16) Alexander AL, Lee JE, Lainhart JE, et al. Diffusion tensor imaging of the corpus callosum in Autism. Neuroimage. 2007; 34: 61-73
|
|
|
17) Lee JE, Bigler ED, Lainhart JE, et al. Diffusion tensor imaging of white matter in the superior temporal gyrus and temporal stem in autism. Neurosci Lett. 2007; 424: 127-32
|
|
|
18) Yamada K, Matsuzawa H, Nakata T, et al. Brain developmental abnormalities in Prader-Willi Syndrome detected by diffusion tensor imaging. Pediatrics. 2006; 118: e442-8
|
|
|
19) Eluvathingal TJ, Hasan KM, Cobbs LE, et al. Quantitative diffusion tensor tractgraphy of association and projection fibers in normally developing child and adolescents. Cereb Cortex. 2007; 17: 2760-8
|
|
|
20) Gilmore JH, Lin W, Gerig G, et al. Early postnatal development of corpus callosum and corticospinal white matter assessed with quantitative tractography. AJNR Am J Neuroradiol. 2008; 59: 216-20
|
|
|
21) Kim DH, Chung SW, Glenn OA, et al. Diffusion-weighted imaging of fetal brain in vivo. Magn Reson Med. 2008; 59: 216-20
|
|
|
22) Govindan RM, Chugani HT, Sood S, et al. Diffusion tensor imaging of brain plasticity after occipital lobectomy. Pediatr Neurol. 2008; 38: 27-33
|
|
|
23) Ludeman NA, Berman JI, Glenn, et al. Diffusion tensor imaging of the pyramidal tracts in infants with motor dysfunction. Neurology. 2008; 71: 1676-82
|
|
|
24) Nagae LM, Hoon AH, Mori S, et al. Diffusion Tensor imaging in children with periventricular leukomalacia: variability of injuries to white matter tracts. AJNR Am J Neuroradiol. 2007; 28: 1213-22
|
|
|
25) Miller SP, McQuillen PS, Vigneron DB, et al. Abnormal brain development in newborns with congenital heart disease. N Engl J Med. 2007; 357: 1928-38
|
|
|
26) Kim DH, Chung SW, Glenn OA, et al. Diffusion-weighted imaging of the fetal brain in vivo. Magn Reson Med. 2008; 59: 216-20
|
|
|
27) Reese TG, Heid O, Wedeen, et al. Reduction of eddy-current-induced distortion in diffusion MRI using a twice-refocused spin echo. Magn Reson Med. 2003; 49: 177-82
|
|
|
28) Ardekani S, Sinha U. Geometric distortion correction of high-resolution 3T diffusion tensor brain images. Magn Reson Med. 2005; 54: 1163-71
|
|
|
29) Chen B, Guo H, Song AW. Correction for direction-dependent distortions in diffusion tensor imaging using matched magnetic field maps. Neuroimage. 2006; 30: 121-9
|
|
|
30) Truong TK, Chen B, Song AW. Integrated SENSE DTI with correction of susceptibility- and eddy current-induced geometric distortions. Neuroimage. 2008; 40: 53-8
|
|
|
31) Arfanakis K, Gui M, Lazar M. White matter tractgraphy by means of Turboprop diffusion tensor imaging. Ann N Y Acad Sci. 2005; 1064: 78-87
|
|
|
32) Wang FN, Huang TY, Kwong KK, et al. PROPELLER EPI: An MRI technique suitable for diffusion tensor imaging at high field strength with reduced geometric distortions. Magn Reson Med. 2005; 54: 1232-40
|
|
|
33) Kuo LW, Chen JH, Tseng WY, et al. Optimization of diffusion spectrum imaging and q-ball imaging on clinical MRI system. Neuroimage. 2008; 41: 7-18
|
|
|
34) Wedeen VJ, Hagmann P, Weisskoff RM, et al. Mapping complex tissue architecture with diffusion spectrum magnetic resonance imaging. Magn Reson Med. 2005; 54: 1377-86
|
|
|