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Published in: Pediatric Radiology 9/2006

01-09-2006 | Original Article

Myelination process in preterm subjects with periventricular leucomalacia assessed by magnetization transfer ratio

Authors: Vassilios Xydis, Loukas Astrakas, Aikaterini Drougia, Dimitrios Gassias, Styliani Andronikou, Maria Argyropoulou

Published in: Pediatric Radiology | Issue 9/2006

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Abstract

Background

Magnetization transfer imaging assesses the myelination status of the brain.

Objectives

To study the progress of myelination in children with periventricular leucomalacia (PVL) by measuring the magnetization transfer ratio (MTR) and to compare the MTR values with normal values.

Materials and methods

Brain MTR in 28 PVL subjects (16 males, 12 females, gestational age 30.7±2.5 weeks, corrected age 3.1±2.9 years) was measured using a 3D gradient echo sequence (TR/TE 32/8 ms, flip angle 60°, 4 mm/2 mm overlapping sections) without and with magnetization transfer prepulse and compared with normal values for preterm subjects.

Results

MTR of white-matter structures followed a monoexponential function model (y=A−B*exp(−x/C)) while the thalamus and caudate nucleus had a poor goodness of fit. MTR of the splenium of the corpus callosum reached a final value lower than normal (0.67 versus 0.70) at a younger age [t(99%) at 10.32 versus 18.90 months; P<0.05]. MTR of the normal-appearing occipital white matter and of the genu of the corpus callosum reached a normal final MTR but at a younger age than normal preterm infants [t(99%) at 8.51 versus 14.50 months and 12.51 versus 20.85 months, respectively].

Conclusion

In PVL subjects, myelination of the splenium is characterized by early arrest and deficient maturation. Accelerated myelination in unaffected white matter might suggest a compensatory process of reorganization.
Literature
1.
go back to reference Volpe JJ (2001) Neurobiology of periventricular leucomalacia in the premature infant. Pediatr Res 50:553–562PubMedCrossRef Volpe JJ (2001) Neurobiology of periventricular leucomalacia in the premature infant. Pediatr Res 50:553–562PubMedCrossRef
2.
go back to reference Haynes RL, Baud O, Li J, et al (2005) Oxidative and nitrative injury in periventricular leukomalacia: a review. Brain Pathol 15:225–233PubMedCrossRef Haynes RL, Baud O, Li J, et al (2005) Oxidative and nitrative injury in periventricular leukomalacia: a review. Brain Pathol 15:225–233PubMedCrossRef
4.
go back to reference du Plessis AJ, Volpe JJ (2002) Perinatal brain injury in the preterm and term newborn. Curr Opin Neurol 15:151–157PubMedCrossRef du Plessis AJ, Volpe JJ (2002) Perinatal brain injury in the preterm and term newborn. Curr Opin Neurol 15:151–157PubMedCrossRef
5.
go back to reference Inder TE, Huppi PS, Warfield S, et al (1999) Periventricular white matter injury in the premature infant is followed by reduced cerebral cortical gray matter volume at term. Ann Neurol 46:755–760PubMedCrossRef Inder TE, Huppi PS, Warfield S, et al (1999) Periventricular white matter injury in the premature infant is followed by reduced cerebral cortical gray matter volume at term. Ann Neurol 46:755–760PubMedCrossRef
6.
go back to reference Argyropoulou MI, Xydis V, Drougia A, et al (2003) MRI measurements of the pons and cerebellum in children born preterm; associations with the severity of periventricular leukomalacia and perinatal risk factors. Neuroradiology 45:730–734PubMedCrossRef Argyropoulou MI, Xydis V, Drougia A, et al (2003) MRI measurements of the pons and cerebellum in children born preterm; associations with the severity of periventricular leukomalacia and perinatal risk factors. Neuroradiology 45:730–734PubMedCrossRef
7.
go back to reference Huppi PS, Murphy B, Maier SE, et al (2001) Microstructural brain development after perinatal cerebral white matter injury assessed by diffusion tensor magnetic resonance imaging. Pediatrics 107:455–460PubMedCrossRef Huppi PS, Murphy B, Maier SE, et al (2001) Microstructural brain development after perinatal cerebral white matter injury assessed by diffusion tensor magnetic resonance imaging. Pediatrics 107:455–460PubMedCrossRef
8.
go back to reference Counsell SJ, Allsop JM, Harrison MC, et al (2003) Diffusion-weighted imaging of the brain in preterm infants with focal and diffuse white matter abnormality. Pediatrics 112:1–7PubMedCrossRef Counsell SJ, Allsop JM, Harrison MC, et al (2003) Diffusion-weighted imaging of the brain in preterm infants with focal and diffuse white matter abnormality. Pediatrics 112:1–7PubMedCrossRef
9.
go back to reference Thomas B, Eyssen M, Peeters R, et al (2005) Quantitative diffusion tensor imaging in cerebral palsy due to periventricular white matter injury. Brain 128:2562–2577PubMedCrossRef Thomas B, Eyssen M, Peeters R, et al (2005) Quantitative diffusion tensor imaging in cerebral palsy due to periventricular white matter injury. Brain 128:2562–2577PubMedCrossRef
10.
go back to reference Wolff SD, Balaban RS (1994) Magnetization transfer imaging: practical aspects and clinical applications. Radiology 192:593–599PubMed Wolff SD, Balaban RS (1994) Magnetization transfer imaging: practical aspects and clinical applications. Radiology 192:593–599PubMed
11.
go back to reference Grossman RI, Gomori JM, Ramer KN, et al (1994) Magnetization transfer: theory and clinical applications in neuroradiology. Radiographics 14:279–290PubMed Grossman RI, Gomori JM, Ramer KN, et al (1994) Magnetization transfer: theory and clinical applications in neuroradiology. Radiographics 14:279–290PubMed
12.
go back to reference Mehta RC, Pike GB, Enzmann DR (1995) Magnetization transfer MR of the normal adult brain. AJNR 16:2085–2091PubMed Mehta RC, Pike GB, Enzmann DR (1995) Magnetization transfer MR of the normal adult brain. AJNR 16:2085–2091PubMed
13.
go back to reference Engelbrecht V, Rassek M, Preiss S, et al (1998) Age-dependent changes in magnetization transfer contrast of white matter in the pediatric brain. AJNR 19:1923–1929PubMed Engelbrecht V, Rassek M, Preiss S, et al (1998) Age-dependent changes in magnetization transfer contrast of white matter in the pediatric brain. AJNR 19:1923–1929PubMed
14.
go back to reference van Buchem MA, Steens SC, Vrooman HA, et al (2001) Global estimation of myelination in the developing brain on the basis of magnetization transfer imaging: a preliminary study. AJNR 22:762–766PubMed van Buchem MA, Steens SC, Vrooman HA, et al (2001) Global estimation of myelination in the developing brain on the basis of magnetization transfer imaging: a preliminary study. AJNR 22:762–766PubMed
15.
go back to reference Xydis V, Astrakas L, Zikou A, et al (2006) Magnetization transfer ratio in the brain of preterm subjects: age-related changes during the first 2 years of life. Eur Radiol 16:215–220PubMedCrossRef Xydis V, Astrakas L, Zikou A, et al (2006) Magnetization transfer ratio in the brain of preterm subjects: age-related changes during the first 2 years of life. Eur Radiol 16:215–220PubMedCrossRef
16.
go back to reference Flodmark O, Lupton B, Li D, et al (1989) MR imaging of periventricular leukomalacia in childhood. AJR 152:583–590PubMed Flodmark O, Lupton B, Li D, et al (1989) MR imaging of periventricular leukomalacia in childhood. AJR 152:583–590PubMed
17.
go back to reference Papile LA, Burstein J, Burstein R, et al (1978) Incidence and evolution of subependymal and intraventricular hemorrhage: a study of infants with birth weights less than 1500 gm. J Pediatr 92:529–534PubMedCrossRef Papile LA, Burstein J, Burstein R, et al (1978) Incidence and evolution of subependymal and intraventricular hemorrhage: a study of infants with birth weights less than 1500 gm. J Pediatr 92:529–534PubMedCrossRef
18.
go back to reference Stanisz GJ, Kecojevic A, Bronskill MJ, et al (1999) Characterizing white matter with magnetization transfer and T(2). Magn Reson Med 42:1128–1136PubMedCrossRef Stanisz GJ, Kecojevic A, Bronskill MJ, et al (1999) Characterizing white matter with magnetization transfer and T(2). Magn Reson Med 42:1128–1136PubMedCrossRef
19.
go back to reference Northington FJ, Ferriero DM, Flock DL, et al (2001) Delayed neurodegeneration in neonatal rat thalamus after hypoxia-ischemia is apoptosis. J Neurosci 21:1931–1938PubMed Northington FJ, Ferriero DM, Flock DL, et al (2001) Delayed neurodegeneration in neonatal rat thalamus after hypoxia-ischemia is apoptosis. J Neurosci 21:1931–1938PubMed
20.
go back to reference Puka-Sundvall M, Wallin C, Gilland E, et al (2000) Impairment of mitochondrial respiration after cerebral hypoxia-ischemia in immature rats: relationship to activation of caspase-3 and neuronal injury. Brain Res Dev Brain Res 125:43–50PubMedCrossRef Puka-Sundvall M, Wallin C, Gilland E, et al (2000) Impairment of mitochondrial respiration after cerebral hypoxia-ischemia in immature rats: relationship to activation of caspase-3 and neuronal injury. Brain Res Dev Brain Res 125:43–50PubMedCrossRef
21.
go back to reference Lin Y, Okumura A, Hayakawa F, et al (2001) Quantitative evaluation of thalami and basal ganglia in infants with periventricular leukomalacia. Dev Med Child Neurol 43:481–485PubMedCrossRef Lin Y, Okumura A, Hayakawa F, et al (2001) Quantitative evaluation of thalami and basal ganglia in infants with periventricular leukomalacia. Dev Med Child Neurol 43:481–485PubMedCrossRef
22.
go back to reference Yokochi K (1997) Thalamic lesions revealed by MR associated with periventricular leukomalacia and clinical profiles of subjects. Acta Paediatr 86:493–496PubMedCrossRef Yokochi K (1997) Thalamic lesions revealed by MR associated with periventricular leukomalacia and clinical profiles of subjects. Acta Paediatr 86:493–496PubMedCrossRef
23.
go back to reference Pierpaoli C, Barnett A, Pajevic S, et al (2001) Water diffusion changes in Wallerian degeneration and their dependence on white matter architecture. Neuroimage 13:1174–1185PubMedCrossRef Pierpaoli C, Barnett A, Pajevic S, et al (2001) Water diffusion changes in Wallerian degeneration and their dependence on white matter architecture. Neuroimage 13:1174–1185PubMedCrossRef
24.
go back to reference Parent A, Sato F, Wu Y, et al (2000) Organization of the basal ganglia: the importance of axonal collateralization. Trends Neurosci 23:S20–S27PubMedCrossRef Parent A, Sato F, Wu Y, et al (2000) Organization of the basal ganglia: the importance of axonal collateralization. Trends Neurosci 23:S20–S27PubMedCrossRef
25.
go back to reference Yakovlev PI, Lecours AR (1967) The myelogenetic cycles of regional maturation of the brain. In: Minkowski A (ed) Regional development of the brain in early life. Blackwell, Oxford, pp 3–70 Yakovlev PI, Lecours AR (1967) The myelogenetic cycles of regional maturation of the brain. In: Minkowski A (ed) Regional development of the brain in early life. Blackwell, Oxford, pp 3–70
26.
go back to reference Kinney HC, Brody BA, Kloman AS, et al (1988) Sequence of central nervous system myelination in human infancy. J Neuropathol Exp Neurol 47:217–234PubMedCrossRef Kinney HC, Brody BA, Kloman AS, et al (1988) Sequence of central nervous system myelination in human infancy. J Neuropathol Exp Neurol 47:217–234PubMedCrossRef
27.
go back to reference Barkovich AJ, Lyon G, Evrard P (1992) Formation, maturation, and disorders of white matter. AJNR 13:447–461PubMed Barkovich AJ, Lyon G, Evrard P (1992) Formation, maturation, and disorders of white matter. AJNR 13:447–461PubMed
28.
go back to reference Fedrizzi E, Inverno M, Bruzzone MG, et al (1996) MRI features of cerebral lesions and cognitive functions in preterm spastic diplegic children. Pediatr Neurol 15:207–212PubMedCrossRef Fedrizzi E, Inverno M, Bruzzone MG, et al (1996) MRI features of cerebral lesions and cognitive functions in preterm spastic diplegic children. Pediatr Neurol 15:207–212PubMedCrossRef
29.
go back to reference Hoon AH Jr, Lawrie WT Jr, Melhem ER, et al (2002) Diffusion tensor imaging of periventricular leukomalacia shows affected sensory cortex white matter pathways. Neurology 59:752–756PubMed Hoon AH Jr, Lawrie WT Jr, Melhem ER, et al (2002) Diffusion tensor imaging of periventricular leukomalacia shows affected sensory cortex white matter pathways. Neurology 59:752–756PubMed
30.
go back to reference Nagy Z, Westerberg H, Skare S, et al (2003) Preterm children have disturbances of white matter at 11 years of age as shown by diffusion tensor imaging. Pediatr Res 54:672–679PubMedCrossRef Nagy Z, Westerberg H, Skare S, et al (2003) Preterm children have disturbances of white matter at 11 years of age as shown by diffusion tensor imaging. Pediatr Res 54:672–679PubMedCrossRef
32.
go back to reference Fields RD (2005) Myelination: an overlooked mechanism of synaptic plasticity? Neuroscientist 11:528–531PubMedCrossRef Fields RD (2005) Myelination: an overlooked mechanism of synaptic plasticity? Neuroscientist 11:528–531PubMedCrossRef
Metadata
Title
Myelination process in preterm subjects with periventricular leucomalacia assessed by magnetization transfer ratio
Authors
Vassilios Xydis
Loukas Astrakas
Aikaterini Drougia
Dimitrios Gassias
Styliani Andronikou
Maria Argyropoulou
Publication date
01-09-2006
Publisher
Springer-Verlag
Published in
Pediatric Radiology / Issue 9/2006
Print ISSN: 0301-0449
Electronic ISSN: 1432-1998
DOI
https://doi.org/10.1007/s00247-006-0235-x

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