MECP2 duplications in six patients with complex sex chromosome rearrangements

Amy M Breman1, Melissa B Ramocki, Sung-Hae L Kang

  • 1Medical Genetics Laboratories, Department of Molecular and Human Genetics, Baylor College of Medicine, Houston, TX, USA.

Insights

Duplications of the MECP2 gene region on the X chromosome cause severe neurological issues. This study details six cases, including complex rearrangements, highlighting the importance of advanced genetic testing for accurate diagnosis.

Area of Science:

  • Genetics
  • Molecular Biology
  • Clinical Genetics

Background:

  • Duplications in the Xq28 chromosome region lead to a specific phenotype including hypotonia, developmental delay, and neurological impairment.
  • Increased MECP2 gene expression due to dosage sensitivity is implicated in the severe neurological deficits observed.

Observation:

  • This study reports six cases with sex chromosome rearrangements resulting in MECP2 duplication.
  • Four cases involved unbalanced rearrangements between the X and Y chromosomes, with Xq material translocated to the Y chromosome.
  • Two cases presented microduplications identified by array comparative genomic hybridization (CGH), confirmed by fluorescent in situ hybridization (FISH) as recombinant X chromosomes due to maternal pericentric inversions.

Findings:

  • Array CGH is effective in detecting MECP2 microduplications.
  • Confirmatory chromosome and FISH studies are crucial for localizing duplicated material and identifying complex rearrangements.

Implications:

  • These findings expand the understanding of MECP2 duplication mechanisms and their genetic basis.
  • Accurate diagnosis of MECP2 duplications through advanced genetic techniques is vital for affected individuals and families.

Related Concept Videos

Nondisjunction01:29

Nondisjunction

During meiosis, chromosomes occasionally separate improperly. This occurs due to failure of homologous chromosome separation during meiosis I or failed sister chromatid separation during meiosis II. In some species, notably plants, nondisjunction can result in an organism with an entire additional set of chromosomes, which is called polyploidy. In humans, nondisjunction can occur during male or female gametogenesis and the resulting gametes possess one too many or one too few chromosomes.
Nondisjunction01:21

Nondisjunction

Nondisjunction is the failure of homologous chromosomes or sister chromatids to separate correctly and move to the opposite poles of the cells. This produces daughter cells with abnormal chromosome numbers.  Nondisjunction is common during anaphase I or anaphase II of meiosis.  Mutations in synaptonemal complex proteins that attach homologous chromosomes increase the chances of nondisjunction in anaphase I of meiosis I. In contrast, mutations in topoisomerases and condensins that hold sister...
Meiosis I03:09

Meiosis I

Meiosis is the division of a diploid cell into haploid cells forming sperm and eggs in animals through differentiation. Meiosis I is the first stage of meiosis, where the genetic recombination of homologous chromosomes and the reduction of the ploidy level by half occurs.
Prophase I is the most extended and complex step of meiosis I characterized by synapsis, chromosome pairing, and recombination of the homologous chromosomes. This process is facilitated by a proteinaceous structure called the...
Meiosis I01:49

Meiosis I

Meiosis is a carefully orchestrated set of cell divisions, the goal of which—in humans—is to produce haploid sperm or eggs, each containing half the number of chromosomes present in somatic cells elsewhere in the body. Meiosis I is the first such division, and involves several key steps, among them: condensation of replicated chromosomes in diploid cells; the pairing of homologous chromosomes and their exchange of information; and finally, the separation of homologous chromosomes by a...
Karyotyping01:17

Karyotyping

Describing the number and physical features of chromosomes can reveal abnormalities that underlie genetic diseases. This description is facilitated by special staining techniques that produce a particular banding pattern on each chromosome. State-of-the-art techniques make this approach even more powerful, enabling the detection of individual genes that cause disease.A Simple Chromosome Staining Technique Provides Valuable Scientific InsightSome genetic diseases can be detected by looking at...
Centrosome Duplication02:25

Centrosome Duplication

The primary microtubule organizing center (MTOC) in animal cells is the centrosome. A centrosome has two cylindrical centrioles at its core. Each centriole consists of nine sets of three microtubules held together by proteins. The centrioles are positioned at right angles to each other and surrounded by a shapeless protein cloud called the pericentriolar matrix, or pericentriolar material (PCM).
To ensure that each daughter cell receives a centrosome after cell division, centrosome duplication...