Skip to main content Accessibility help
×
Hostname: page-component-77c89778f8-7drxs Total loading time: 0 Render date: 2024-07-21T03:28:39.677Z Has data issue: false hasContentIssue false

White Matter

from Section 4 - Disruptions / Hypoxic-Ischemic Injury

Published online by Cambridge University Press:  07 August 2021

Mirna Lechpammer
Affiliation:
New York University School of Medicine
Marc Del Bigio
Affiliation:
University of Manitoba, Canada
Rebecca Folkerth
Affiliation:
New York University School of Medicine
Get access
Type
Chapter
Information
Publisher: Cambridge University Press
Print publication year: 2021

Access options

Get access to the full version of this content by using one of the access options below. (Log in options will check for institutional or personal access. Content may require purchase if you do not have access.)

References

Haynes, RL, Folkerth, RD. White matter lesions in the perinatal period. In: Developmental Neuropathology, 2nd ed., Adle-Biassette, H, Harding, BN, Golden, JA, eds. Boston: Wiley; 2018, pp. 213–27.Google Scholar
Hefti, MM, Trachtenberg, FL, Haynes, RL, Hassett, C, Volpe, JJ, Kinney, HC. A century of germinal matrix intraventricular hemorrhage in autopsied premature infants: A historical account. Pediatr Dev Pathol 2016;19:108–14.CrossRefGoogle ScholarPubMed
Pierson, CR, Folkerth, RD, Billiards, SS, Trachtenberg, FL, Drinkwater, ME, Volpe, JJ, Kinney, HC. Gray matter injury associated with periventricular leukomalacia in the premature infant. Acta Neuropathol 2007;114:619–31.CrossRefGoogle ScholarPubMed
Volpe, JJ. The encephalopathy of prematurity–brain injury and impaired brain development inextricably intertwined. Semin Pediatr Neurol 2009;16:167–78.CrossRefGoogle ScholarPubMed
Benders, MJ, Kersbergen, KJ, de Vries, LS. Neuroimaging of white matter injury, intraventricular and cerebellar hemorrhage. Clin Perinatol 2014;41:6982.Google Scholar
Buser, JR, Maire, J, Riddle, A, Gong, X, Nguyen, T, Nelson, K, Luo, NL, Ren, J, Struve, J, Sherman, LS, Miller, SP, Chau, V, Hendson, G, Ballabh, P, Grafe, MR, Back, SA. Arrested preoligodendrocyte maturation contributes to myelination failure in premature infants. Ann Neurol 2012;71:93109.CrossRefGoogle ScholarPubMed
Haynes, RL, Sleeper, LA, Volpe, JJ, Kinney, HC. Neuropathologic studies of the encephalopathy of prematurity in the late preterm infant. Clin Perinatol 2013;40:707–22.Google Scholar
Zupan, V, Gonzalez, P, Lacaze-Masmonteil, T, Boithias, C, d’Allest AM, Dehan M, Gabilan JC. Periventricular leukomalacia: risk factors revisited.Dev Med Child Neurol 1996;38:1061–7.Google Scholar
Huang, J, Zhang, L, Kang, B, Zhu, T, Li, Y, Zhao, F, Qu, Y, Mu, D. Association between perinatal hypoxia-ischemia and periventricular leukomalacia in preterm infants: A systematic review and meta-analysis. PLoS One. 2017;12(9):e0184993.CrossRefGoogle ScholarPubMed
Volpe, JJ (2008) Neurology of the Newborn, 5th ed. Philadelphia: Saunders Elsevier.Google Scholar
Panigrahy, A, Wisnowski, JL, Furtado, A, Lepore, N, Paquette, L, Bluml, S. Neuroimaging biomarkers of preterm brain injury: toward developing the preterm connectome. Pediatr Radiol 2012 42 Suppl 1:S33S61.Google Scholar
Ceschin, R, Lee, VK, Schmithorst, V, Panigrahy, A. Regional vulnerability of longitudinal cortical association connectivity: Associated with structural network topology alterations in preterm children with cerebral palsy. Neuroimage Clin 2015 9:322–37.Google Scholar
Inder, TE, Huppi, PS, Warfield, S, Kikinis, R, Zientara, GP, Barnes, PD, Jolesz, F, Volpe, JJ. Periventricular white matter injury in the premature infant is followed by reduced cerebral cortical gray matter volume at term. Ann Neurol 1999 46(5):755–60.Google Scholar
Jin, C, Londono, I, Mallard, C, Lodygensky, GA. New means to assess neonatal inflammatory brain injury. J Neuroinflammation 205;(12):180–95.Google Scholar
O’Shea, TM, Joseph, RM, Kuban, KCK, Allred, EN, Ware, J, Coster, T, Fichorova, R, Dammann, O, Leviton, A, for the ELGAN Study Investigators.Elevated blood levels of inflammation-related proteins are associated with an attention problem at age 24 months in extremely preterm infants. Pediatr Res 2014;75:781–7.CrossRefGoogle Scholar
Leviton, A, Gilles, FH. Acquired perinatal leukoencephalopathy. Ann Neurol 1984;6:18.CrossRefGoogle Scholar
Haynes, RL, Billiards, SS, Borenstein, NS, Volpe, JJ, Kinney, HC. Diffuse axonal injury in periventricular leukomalacia as determined by apoptotic marker fractin. Pediatr Res 2008;63:656–61.CrossRefGoogle ScholarPubMed

Save book to Kindle

To save this book to your Kindle, first ensure coreplatform@cambridge.org is added to your Approved Personal Document E-mail List under your Personal Document Settings on the Manage Your Content and Devices page of your Amazon account. Then enter the ‘name’ part of your Kindle email address below. Find out more about saving to your Kindle.

Note you can select to save to either the @free.kindle.com or @kindle.com variations. ‘@free.kindle.com’ emails are free but can only be saved to your device when it is connected to wi-fi. ‘@kindle.com’ emails can be delivered even when you are not connected to wi-fi, but note that service fees apply.

Find out more about the Kindle Personal Document Service.

Available formats
×

Save book to Dropbox

To save content items to your account, please confirm that you agree to abide by our usage policies. If this is the first time you use this feature, you will be asked to authorise Cambridge Core to connect with your account. Find out more about saving content to Dropbox.

Available formats
×

Save book to Google Drive

To save content items to your account, please confirm that you agree to abide by our usage policies. If this is the first time you use this feature, you will be asked to authorise Cambridge Core to connect with your account. Find out more about saving content to Google Drive.

Available formats
×