LYRM7mutations cause a multifocal cavitating leukoencephalopathy with distinct MRI appearance
Author(s) -
Cristina Dallabona,
Truus E. M. Abbink,
Rosalba Carrozzo,
Alessandra Torraco,
Andrea Legati,
Carola G.M. van Berkel,
Marcello Niceta,
Tiziana Langella,
Daniela Verrigni,
Teresa Rizza,
Daria Diodato,
Fiorella Piemonte,
Eleonora Lamantea,
Mingyan Fang,
Jianguo Zhang,
Diego Martinelli,
Elsa Bevivino,
Carlo DionisiVici,
Adeline Vanderver,
Sunny Philip,
Manju A. Kurian,
Ishwar C. Verma,
Sunita BijarniaMahay,
Sandra Jacinto,
Fátima Furtado,
Patrizia Accorsi,
Anna Ardissone,
Isabella Moroni,
Ileana Ferrero,
Marco Tartaglia,
P Goffrini,
Daniele Ghezzi,
Marjo S. van der Knaap,
Enrico Bertini
Publication year - 2016
Publication title -
brain
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.142
H-Index - 336
eISSN - 1460-2156
pISSN - 0006-8950
DOI - 10.1093/brain/awv392
Subject(s) - leukoencephalopathy , sanger sequencing , magnetic resonance imaging , medicine , pathology , missense mutation , encephalopathy , white matter , compound heterozygosity , biology , mutation , genetics , radiology , gene
This study focused on the molecular characterization of patients with leukoencephalopathy associated with a specific biochemical defect of mitochondrial respiratory chain complex III, and explores the impact of a distinct magnetic resonance imaging pattern of leukoencephalopathy to detect biallelic mutations in LYRM7 in patients with biochemically unclassified leukoencephalopathy. 'Targeted resequencing' of a custom panel including genes coding for mitochondrial proteins was performed in patients with complex III deficiency without a molecular genetic diagnosis. Based on brain magnetic resonance imaging findings in these patients, we selected additional patients from a database of unclassified leukoencephalopathies who were scanned for mutations in LYRM7 by Sanger sequencing. Targeted sequencing revealed homozygous mutations in LYRM7, encoding mitochondrial LYR motif-containing protein 7, in four patients from three unrelated families who had a leukoencephalopathy and complex III deficiency. Two subjects harboured previously unreported variants predicted to be damaging, while two siblings carried an already reported pathogenic homozygous missense change. Sanger sequencing performed in the second cohort of patients revealed LYRM7 mutations in three additional patients, who were selected on the basis of the magnetic resonance imaging pattern. All patients had a consistent magnetic resonance imaging pattern of progressive signal abnormalities with multifocal small cavitations in the periventricular and deep cerebral white matter. Early motor development was delayed in half of the patients. All patients but one presented with subacute neurological deterioration in infancy or childhood, preceded by a febrile infection, and most patients had repeated episodes of subacute encephalopathy with motor regression, irritability and stupor or coma resulting in major handicap or death. LYRM7 protein was strongly reduced in available samples from patients; decreased complex III holocomplex was observed in fibroblasts from a patient carrying a splice site variant; functional studies in yeast confirmed the pathogenicity of two novel mutations. Mutations in LYRM7 were previously found in a single patient with a severe form of infantile onset encephalopathy. We provide new molecular, clinical, and neuroimaging data allowing us to characterize more accurately the molecular spectrum of LYRM7 mutations highlighting that a distinct and recognizable magnetic resonance imaging pattern is related to mutations in this gene. Inter- and intrafamilial variability exists and we observed one patient who was asymptomatic by the age of 6 years.
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