Complex rearrangements in patients with duplications of MECP2 can occur by fork stalling and template switching
Open Access
- 26 March 2009
- journal article
- research article
- Published by Oxford University Press (OUP) in Human Molecular Genetics
- Vol. 18 (12) , 2188-2203
- https://doi.org/10.1093/hmg/ddp151
Abstract
Duplication at the Xq28 band including the MECP2 gene is one of the most common genomic rearrangements identified in neurodevelopmentally delayed males. Such duplications are non-recurrent and can be generated by a non-homologous end joining (NHEJ) mechanism. We investigated the potential mechanisms for MECP2 duplication and examined whether genomic architectural features may play a role in their origin using a custom designed 4-Mb tiling-path oligonucleotide array CGH assay. Each of the 30 patients analyzed showed a unique duplication varying in size from ∼250 kb to ∼2.6 Mb. Interestingly, in 77% of these non-recurrent duplications, the distal breakpoints grouped within a 215 kb genomic interval, located 47 kb telomeric to the MECP2 gene. The genomic architecture of this region contains both direct and inverted low-copy repeat (LCR) sequences; this same region undergoes polymorphic structural variation in the general population. Array CGH revealed complex rearrangements in eight patients; in six patients the duplication contained an embedded triplicated segment, and in the other two, stretches of non-duplicated sequences occurred within the duplicated region. Breakpoint junction sequencing was achieved in four duplications and identified an inversion in one patient, demonstrating further complexity. We propose that the presence of LCRs in the vicinity of the MECP2 gene may generate an unstable DNA structure that can induce DNA strand lesions, such as a collapsed fork, and facilitate a Fork Stalling and Template Switching event producing the complex rearrangements involving MECP2.Keywords
This publication has 57 references indexed in Scilit:
- Autism and other neuropsychiatric symptoms are prevalent in individuals with MeCP2 duplication syndromeAnnals of Neurology, 2009
- Mechanisms for human genomic rearrangementsPathoGenetics, 2008
- Segmental Duplications Arise from Pol32-Dependent Repair of Broken Forks through Two Alternative Replication-Based MechanismsPLoS Genetics, 2008
- Identification of chromosome abnormalities in subtelomeric regions by microarray analysis: A study of 5,380 casesAmerican Journal of Medical Genetics Part A, 2008
- Nonrecurrent MECP2 duplications mediated by genomic architecture-driven DNA breaks and break-induced replication repairGenome Research, 2008
- Bacterial artificial chromosome-emulation oligonucleotide arrays for targeted clinical array-comparative genomic hybridization analysesGenetics in Medicine, 2008
- CNV and nervous system diseases – what’s new?Cytogenetic and Genome Research, 2008
- Recurrent Reciprocal Genomic Rearrangements of 17q12 Are Associated with Renal Disease, Diabetes, and EpilepsyAmerican Journal of Human Genetics, 2007
- Characterization of Potocki-Lupski Syndrome (dup(17)(p11.2p11.2)) and Delineation of a Dosage-Sensitive Critical Interval That Can Convey an Autism PhenotypeAmerican Journal of Human Genetics, 2007
- Autism, language delay and mental retardation in a patient with 7q11 duplicationJournal of Medical Genetics, 2007