Characterization of Extensive Microstructural Variations Associated with Punctate White Matter Lesions in Preterm Neonates

被引:23
作者
Li, X. [1 ,3 ]
Gao, J. [1 ]
Wang, M. [1 ]
Zheng, J. [2 ]
Li, Y. [1 ]
Hui, E. S. [4 ]
Wan, M. [3 ]
Yang, J. [1 ,3 ]
机构
[1] First Affiliated Hosp, Dept Radiol, Xian, Shaanxi, Peoples R China
[2] First Affiliated Hosp, Clin Res Ctr, Xian, Shaanxi, Peoples R China
[3] Xi An Jiao Tong Univ, Sch Life Sci & Technol, Dept Biomed Engn, Key Lab Biomed Informat Engn,Minist Educ, Xian, Peoples R China
[4] Univ Hong Kong, Dept Diagnost Radiol, Hong Kong, Hong Kong, Peoples R China
基金
中国国家自然科学基金;
关键词
DIFFUSION TENSOR MRI; MAGNETIC-RESONANCE; CORPUS-CALLOSUM; SPATIAL STATISTICS; PREMATURE BRAIN; INFANT BRAIN; TRACT; INJURY; ABNORMALITIES; TRACTOGRAPHY;
D O I
10.3174/ajnr.A5226
中图分类号
R74 [神经病学与精神病学];
学科分类号
摘要
BACKGROUND AND PURPOSE: Punctate white matter lesions are common in preterm neonates. Neurodevelopmental outcomes of the neonates are related to the degree of extension. This study aimed to characterize the extent of microstructural variations for different punctate white matter lesion grades. MATERIALS AND METHODS: Preterm neonates with punctate white matter lesions were divided into 3 grades (from mild to severe: grades I-III). DTI-derived fractional anisotropy, axial diffusivity, and radial diffusivity between patients with punctate white matter lesions and controls were compared with Tract-Based Spatial Statistics and tract-quantification methods. RESULTS: Thirty-three preterm neonates with punctate white matter lesions and 33 matched controls were enrolled. There were 15, 9, and 9 patients, respectively, in grades I, II, and III. Punctate white matter lesions were mainly located in white matter adjacent to the lateral ventricles, especially regions lateral to the trigone, posterior horns, and centrum semiovale and/or corona radiata. Extensive microstructural changes were observed in neonates with grade III punctate white matter lesions, while no significant changes in DTI metrics were found for grades I and II. A pattern of increased axial diffusivity, increased radial diffusivity, and reduced/unchanged fractional anisotropy was found in regions adjacent to punctate white matter lesion sites seen on T1WI and T2WI. Unchanged axial diffusivity, increased radial diffusivity, and reduced/unchanged fractional anisotropy were observed in regions distant from punctate white matter lesion sites. CONCLUSIONS: White matter microstructural variations were different across punctate white matter lesion grades. Extensive change patterns varied according to the distance to the lesion sites in neonates with severe punctate white matter lesions. These findings may help in determining the outcomes of punctate white matter lesions and selecting treatment strategies.
引用
收藏
页码:1228 / 1234
页数:7
相关论文
共 42 条
[11]   THE EARLY DEVELOPMENT OF BRAIN WHITE MATTER: A REVIEW OF IMAGING STUDIES IN FETUSES, NEWBORNS AND INFANTS [J].
Dubois, J. ;
Dehaene-Lambertz, G. ;
Kulikova, S. ;
Poupon, C. ;
Hueppi, P. S. ;
Hertz-Pannier, L. .
NEUROSCIENCE, 2014, 276 :48-71
[12]   Natural history of brain lesions in extremely preterm infants studied with serial magnetic resonance imaging from birth and neurodevelopmental assessment [J].
Dyet, Leigh E. ;
Kennea, Nigel ;
Counsell, Serena J. ;
Maalouf, Elia F. ;
Ajayi-Obe, Morenike ;
Duggan, Philip J. ;
Harrison, Michael ;
Allsop, Joanna M. ;
Hajnal, Joseph ;
Herlihy, Amy H. ;
Edwards, Bridget ;
Laroche, Sabrina ;
Cowan, Frances M. ;
Rutherford, Mary A. ;
Edwards, A. David .
PEDIATRICS, 2006, 118 (02) :536-548
[13]   Identification and interpretation of microstructural abnormalities in motor pathways in adolescents born preterm [J].
Groeschel, Samuel ;
Tournier, J-Donald ;
Northam, Gemma B. ;
Baldeweg, Torsten ;
Wyatt, John ;
Vollmer, Brigitte ;
Connelly, Alan .
NEUROIMAGE, 2014, 87 :209-219
[14]  
Hadders-Algra M, 2017, DEV MED CHILD NEUROL, V59, P246, DOI [10.1111/dmcn.13331, 10.1111/dmcn.13047]
[15]   Microstructural brain development after perinatal cerebral white matter injury assessed by diffusion tensor magnetic resonance imaging [J].
Hüppi, PS ;
Murphy, B ;
Maier, SE ;
Zientara, GP ;
Inder, TE ;
Barnes, PD ;
Kikinis, R ;
Jolesz, FA ;
Volpe, JJ .
PEDIATRICS, 2001, 107 (03) :455-460
[16]   Diffusion-tensor imaging of major white matter tracts and their role in language processing in aphasia [J].
Ivanova, Maria V. ;
Isaev, Dmitry Yu. ;
Dragoy, Olga V. ;
Akinina, Yulia S. ;
Petrushevskiy, Alexey G. ;
Fedina, Oksana N. ;
Shklovsky, Victor M. ;
Dronkers, Nina F. .
CORTEX, 2016, 85 :165-181
[17]   The Corticospinal Tract: A Biomarker to Categorize Upper Limb Functional Potential in Unilateral Cerebral Palsy [J].
Jaspers, Ellen ;
Byblow, Winston D. ;
Feys, Hilde ;
Wenderoth, Nicole .
FRONTIERS IN PEDIATRICS, 2016, 3
[18]   Different Patterns of Punctate White Matter Lesions in Serially Scanned Preterm Infants [J].
Kersbergen, Karina J. ;
Benders, Manon J. N. L. ;
Groenendaal, Floris ;
Koopman-Esseboom, Corine ;
Nievelstein, Rutger A. J. ;
van Haastert, Ingrid C. ;
de Vries, Linda S. .
PLOS ONE, 2014, 9 (10)
[19]   Diffusion tensor MRI of the corpus callosum and cognitive function in adults born preterm [J].
Kontis, Dimitris ;
Catani, Marco ;
Cuddy, Marion ;
Walshe, Muriel ;
Nosarti, Chiara ;
Jones, Derek ;
Wyatt, John ;
Rifkin, Larry ;
Murray, Robin ;
Allin, Matthew .
NEUROREPORT, 2009, 20 (04) :424-428
[20]   Functional role of corpus callosum regions in human memory functioning [J].
Kozlovskiy, S. A. ;
Vartanov, A. V. ;
Pyasik, M. M. ;
Nikonova, E. Y. .
INTERNATIONAL JOURNAL OF PSYCHOPHYSIOLOGY, 2012, 85 (03) :396-397