Skip to main content
Top
Published in: Neuroradiology 11/2017

01-11-2017 | Paediatric Neuroradiology

Nonketotic hyperglycinemia: spectrum of imaging findings with emphasis on diffusion-weighted imaging

Authors: Shaimaa Abdelsattar Mohammad, Heba Salah Abdelkhalek

Published in: Neuroradiology | Issue 11/2017

Login to get access

Abstract

Purpose

The purpose of this study was to explore brain abnormalities in nonketotic hyperglycinemia (NKH) using diffusion-weighted imaging (DWI) and when feasible, diffusion tensor imaging (DTI) and tractography.

Methods

Seven patients with confirmed diagnosis of NKH (8 days–2 years) underwent brain MRI. Conventional T1 and T2WI were acquired in all patients, DWI in six and DTI and tractography in two (4 months and 2 years). Measurements of fractional anisotropy (FA), radial diffusivity (RD), axial diffusivity (AD) and Trace from eight white matter regions were compared between the two patients and age-matched controls. Tractography of corpus callosum, superior longitudinal fasciculus and corticospinal tracts was performed with extraction of their FA and diffusivity indices.

Results

MRI showed nonspecific brain atrophy in three children. Corpus callosum atrophy was found as a part of these atrophic changes. Cerebellar vermian hypoplasia and supratentorial hydrocephalus were seen in one patient. The topographic distribution of diffusion restriction was different among patients. The affected white matter regions were not predominantly following the expected areas of myelination according to patients’ age. Deep grey matter nuclei were affected in one patient. DTI revealed lower FA with higher RD in most of the measured white matter regions and tracts. These changes were more appreciated in the 2-year-old patient. However, Trace was higher in the 2-year-old patient and lower in the 4-month-old one. The extracted tracts were decreased in volume.

Conclusion

DWI, DTI and tractography with FA and diffusivity measurements can give insights into white matter microstructural alterations that can occur in NKH.
Appendix
Available only for authorised users
Literature
1.
go back to reference Hoover-Fong JE, Shah S, Van Hove JLK (2004) Natural history of nonketotic hyperglycinemia in 65 patients. Neurology 63:1847–1853CrossRefPubMed Hoover-Fong JE, Shah S, Van Hove JLK (2004) Natural history of nonketotic hyperglycinemia in 65 patients. Neurology 63:1847–1853CrossRefPubMed
2.
go back to reference Press GA, Barshop BA, Haas RH et al (1989) Abnormalities of the brain in nonketotic hyperglycinemia: MR manifestations. Am J Neuroradiol 10:315–321PubMed Press GA, Barshop BA, Haas RH et al (1989) Abnormalities of the brain in nonketotic hyperglycinemia: MR manifestations. Am J Neuroradiol 10:315–321PubMed
3.
go back to reference Shah DK, Tingay DG, Fink AM et al (2005) Magnetic resonance imaging in neonatal nonketotic hyperglycinemia. Pediatr Neurol 33:50–52CrossRefPubMed Shah DK, Tingay DG, Fink AM et al (2005) Magnetic resonance imaging in neonatal nonketotic hyperglycinemia. Pediatr Neurol 33:50–52CrossRefPubMed
4.
go back to reference Khong PL, Lam BCC, Chung BHY (2003) Diffusion-weighted MR imaging in neonatal nonketotic hyperglycinemia. Am J Neuroradiol 24:1181–1183PubMed Khong PL, Lam BCC, Chung BHY (2003) Diffusion-weighted MR imaging in neonatal nonketotic hyperglycinemia. Am J Neuroradiol 24:1181–1183PubMed
5.
go back to reference Kanekar S, Byler D (2013) Characteristic MRI findings in neonatal nonketotic hyperglycinemia due to sequence changes in GLDC gene encoding the enzyme glycine decarboxylase. Metab Brain Dis 28:717–720CrossRefPubMed Kanekar S, Byler D (2013) Characteristic MRI findings in neonatal nonketotic hyperglycinemia due to sequence changes in GLDC gene encoding the enzyme glycine decarboxylase. Metab Brain Dis 28:717–720CrossRefPubMed
6.
go back to reference Nicolasjilwan M, Ozer H, Wintermark M et al (2011) Neonatal non-ketotic hyperglycinemia. J Neuroradiol 38:246–250CrossRefPubMed Nicolasjilwan M, Ozer H, Wintermark M et al (2011) Neonatal non-ketotic hyperglycinemia. J Neuroradiol 38:246–250CrossRefPubMed
7.
go back to reference Butler CJ, Likeman M, Mallick AA (2017) Distinctive magnetic resonance imaging findings in neonatal nonketotic hyperglycinemia. Pediatr Neurol 72:90–91CrossRefPubMed Butler CJ, Likeman M, Mallick AA (2017) Distinctive magnetic resonance imaging findings in neonatal nonketotic hyperglycinemia. Pediatr Neurol 72:90–91CrossRefPubMed
8.
go back to reference Zubarioglu T, Kiykim E, Cansever MS et al (2016) Neonatal nonketotic hyperglycinemia: diffusion-weighted magnetic resonance imaging and diagnostic clues. Acta Neurol Belg 116:671–673CrossRefPubMed Zubarioglu T, Kiykim E, Cansever MS et al (2016) Neonatal nonketotic hyperglycinemia: diffusion-weighted magnetic resonance imaging and diagnostic clues. Acta Neurol Belg 116:671–673CrossRefPubMed
9.
go back to reference Culjat M, Benjak V, Dasovic-Buljevic A et al (2010) Magnetic resonance findings in a neonate with nonketotic hyperglycinemia: case report. J Comput Assist Tomogr 34:762–765CrossRefPubMed Culjat M, Benjak V, Dasovic-Buljevic A et al (2010) Magnetic resonance findings in a neonate with nonketotic hyperglycinemia: case report. J Comput Assist Tomogr 34:762–765CrossRefPubMed
10.
go back to reference Sener RN (2003) Nonketotic hyperglycinemia: diffusion magnetic resonance imaging findings. J Comput Assist Tomogr 27:538–540CrossRefPubMed Sener RN (2003) Nonketotic hyperglycinemia: diffusion magnetic resonance imaging findings. J Comput Assist Tomogr 27:538–540CrossRefPubMed
11.
go back to reference Mourmans J, Majoie CBLM, Barth PG et al (2006) Sequential MR imaging changes in nonketotic hyperglycinemia. Am J Neuroradiol 27:208–211PubMed Mourmans J, Majoie CBLM, Barth PG et al (2006) Sequential MR imaging changes in nonketotic hyperglycinemia. Am J Neuroradiol 27:208–211PubMed
12.
go back to reference DTI, Jiang H, van Zijl PC, Kim J et al (2006) DtiStudio: resource program for diffusion tensor computation and fiber bundle tracking. Comput Methods Prog Biomed 81:106–116CrossRef DTI, Jiang H, van Zijl PC, Kim J et al (2006) DtiStudio: resource program for diffusion tensor computation and fiber bundle tracking. Comput Methods Prog Biomed 81:106–116CrossRef
13.
go back to reference Wakana S, Caprihan A, Panzenboeck MM et al (2007) Reproducibility of quantitative tractography methods applied to cerebral white matter. NeuroImage 36:630–644CrossRefPubMedPubMedCentral Wakana S, Caprihan A, Panzenboeck MM et al (2007) Reproducibility of quantitative tractography methods applied to cerebral white matter. NeuroImage 36:630–644CrossRefPubMedPubMedCentral
14.
go back to reference Shroff MM, Soares-Fernandes JP, Whyte H et al (2010) MR imaging for diagnostic evaluation of encephalopathy in the newborn. Radiographics 30:763–780CrossRefPubMed Shroff MM, Soares-Fernandes JP, Whyte H et al (2010) MR imaging for diagnostic evaluation of encephalopathy in the newborn. Radiographics 30:763–780CrossRefPubMed
15.
go back to reference Patay Z (2011) MR imaging workup of inborn errors of metabolism of early postnatal onset. Magn Reson Imaging Clin N Am 19:733–759CrossRefPubMed Patay Z (2011) MR imaging workup of inborn errors of metabolism of early postnatal onset. Magn Reson Imaging Clin N Am 19:733–759CrossRefPubMed
16.
go back to reference Isaacson J, Provenzale J (2011) Diffusion tensor imaging for evaluation of the childhood brain and pediatric white matter disorders. Neuroimaging Clin N Am 21:179–189CrossRefPubMed Isaacson J, Provenzale J (2011) Diffusion tensor imaging for evaluation of the childhood brain and pediatric white matter disorders. Neuroimaging Clin N Am 21:179–189CrossRefPubMed
17.
go back to reference Song SK, Sun SW, Ramsbottom MJ et al (2002) Dysmyelination revealed through MRI as increased radial (but unchanged axial) diffusion of water. NeuroImage 17:1429–1436CrossRefPubMed Song SK, Sun SW, Ramsbottom MJ et al (2002) Dysmyelination revealed through MRI as increased radial (but unchanged axial) diffusion of water. NeuroImage 17:1429–1436CrossRefPubMed
18.
go back to reference Mori S, Zhang J (2006) Principles of diffusion tensor imaging and its applications to basic neuroscience research. Neuron 51:527–539CrossRefPubMed Mori S, Zhang J (2006) Principles of diffusion tensor imaging and its applications to basic neuroscience research. Neuron 51:527–539CrossRefPubMed
19.
go back to reference Gabis L, Parton P, Roche P (2001) In vivo 1H magnetic resonance spectroscopic measurement of brain glycine levels in nonketotic hyperglycinemia. J Neuroimaging 11:209–211CrossRefPubMed Gabis L, Parton P, Roche P (2001) In vivo 1H magnetic resonance spectroscopic measurement of brain glycine levels in nonketotic hyperglycinemia. J Neuroimaging 11:209–211CrossRefPubMed
20.
go back to reference Viola A, Chabrol B, Nicoli F (2002) Magnetic resonance spectroscopy study of glycine pathways in nonketotic hyperglycinemia. Pediatr Res 52:292–300CrossRefPubMed Viola A, Chabrol B, Nicoli F (2002) Magnetic resonance spectroscopy study of glycine pathways in nonketotic hyperglycinemia. Pediatr Res 52:292–300CrossRefPubMed
21.
go back to reference Dobyns WB (1989) Agenesis of the corpus callosum and gyral malformations are frequent manifestations of nonketotic hyperglycinemia. Neurology 39:817–820CrossRefPubMed Dobyns WB (1989) Agenesis of the corpus callosum and gyral malformations are frequent manifestations of nonketotic hyperglycinemia. Neurology 39:817–820CrossRefPubMed
22.
go back to reference Bekiesiñska-Figatowska M, Rokicki D, Walecki J (2001) MRI in nonketotic hyperglycinaemia: case report. Neuroradiology 43:792–793CrossRef Bekiesiñska-Figatowska M, Rokicki D, Walecki J (2001) MRI in nonketotic hyperglycinaemia: case report. Neuroradiology 43:792–793CrossRef
23.
Metadata
Title
Nonketotic hyperglycinemia: spectrum of imaging findings with emphasis on diffusion-weighted imaging
Authors
Shaimaa Abdelsattar Mohammad
Heba Salah Abdelkhalek
Publication date
01-11-2017
Publisher
Springer Berlin Heidelberg
Published in
Neuroradiology / Issue 11/2017
Print ISSN: 0028-3940
Electronic ISSN: 1432-1920
DOI
https://doi.org/10.1007/s00234-017-1913-0

Other articles of this Issue 11/2017

Neuroradiology 11/2017 Go to the issue