Mosaic maternal uniparental isodisomy for chromosome 7q21-qter

M-P Reboul1, O Tandonnet, N Biteau

  • 1Service de Génétique Médicale, Hopital Pellegrin, Laboratoire de Génétique Humaine, Développement et Cancer, Université Victor Segalen Bordeaux 2, France. marie-pierre.reboul@chu-bordeaux.fr

Clinical Genetics
|August 23, 2006
PubMed

Insights

This study reports a rare case of mosaic partial maternal uniparental disomy of chromosome 7 (UPD7) in a boy with growth retardation. This finding highlights UPD7 as a potential cause for unexplained growth issues.

Area of Science:

  • Genetics
  • Developmental Biology
  • Human Physiology

Background:

  • Uniparental disomy (UPD) can cause clinical abnormalities due to altered gene expression.
  • Severe intrauterine and post-natal growth retardation (IUGR/PNGR) can have complex genetic underpinnings.

Observation:

  • A 2-year-old boy presented with severe IUGR/PNGR and variable sweat chloride concentrations.
  • Molecular analysis revealed a de novo mosaic maternal isodisomy of a chromosome 7 segment (matUPD7).
  • The patient was heterozygous for the F508del mutation in the CFTR gene.

Findings:

  • This is the first report of a mosaic partial UPD7, affecting 72.7 Mb at 7q21-qter.
  • The patient had normal karyotype, ruling out partial duplication.
  • The 7q31-qter segment is implicated as a candidate region for imprinted genes controlling growth.

Implications:

  • Suggests searching for UPD7 in cases of severe, isolated IUGR/PNGR.
  • Underscores the role of imprinted genes in growth regulation.
  • Highlights the diagnostic value of UPD analysis in complex genetic disorders.

Related Concept Videos

The Fluid Mosaic Model01:34

The Fluid Mosaic Model

The fluid mosaic model was first proposed as a visual representation of research observations. The model comprises the composition and dynamics of membranes and serves as a foundation for future membrane-related studies. The model depicts the structure of the plasma membrane with a variety of components, which include phospholipids, proteins, and carbohydrates. These integral molecules are loosely bound, defining the cell’s border and providing fluidity for optimal function.
177.6K
Polytene Chromosomes02:04

Polytene Chromosomes

Polytene chromosomes are giant interphase chromosomes with several DNA strands placed side by side. They were discovered in the year 1881 by Balbiani in salivary glands, intestine, muscles, malpighian tubules, and hypoderm of larvae Chironomus plumosus. Hence, these are also called "Salivary gland chromosomes." These are found in insects of the order Diptera and Collembola; in certain organs of mammals; and synergids, antipodes of flowering plants. Polytene chromosomes are also...
10.9K
Chromosome Structure02:40

Chromosome Structure

A functional eukaryotic chromosome must contain three elements: a centromere, telomeres, and numerous origins of replication.
The centromere is a DNA sequence that links sister chromatids. This is also where kinetochores, protein complexes to which spindle microtubules attach, are constructed after the chromosome is replicated. The kinetochores allow the spindle microtubules to move the chromosomes within the cell during cell division.
Telomeres consist of non-coding repetitive nucleotide...
26.0K
Chromosome Structure02:40

Chromosome Structure

No description available
6.2K
Lampbrush Chromosomes01:51

Lampbrush Chromosomes

In 1882, Flemming observed lampbrush chromosomes (LBC) in salamander eggs. Later in 1892, Rückert observed LBCs in shark egg cells and coined the term "lampbrush chromosomes" because they looked like brushes used to clean kerosene lamps.
LBCs are made up of two pairs of conjugating homologous chromatids. Each chromatid consists of alternatively positioned regions of condensed-inactive chromatin and loosely placed-active side loops, which can be contracted and extended. The loops...
8.6K
Chromosome Replication02:31

Chromosome Replication

Before a cell can divide, it must accurately replicate all of its chromosomes, including the DNA and its associated histone and non-histone proteins.  This process begins at numerous origins of replication during the S phase of the cell cycle in each of a cell’s chromosomes simultaneously. Certain nucleotides can act as origins of replication, but these sequences are not well defined - especially in complex, multi-cellular, eukaryotic species. The length of DNA that spans an origin...
10.5K