Literature DB >> 11841440

Absence of mutations in the HoxA10, HoxA11 and HoxD11 nucleotide coding sequences in thrombocytopenia with absent radius syndrome.

Roger A Fleischman1, Rémi Letestu, Xiafang Mi, David Stevens, Jeffrey Winters, Najet Debili, William Vainchenker.   

Abstract

Recent studies have suggested the HoxA10, HoxA11 and HoxD11 homeobox genes as candidate loci for the thrombocytopenia with absent radius (TAR) syndrome. For example, targeted disruptions of these Hox genes result in abnormal development of the mouse radius, while overexpression of HoxA10 stimulates mouse megakaryocyte (MK) development in vitro. To examine the expression of Hox genes in human MK cells, we utilized reverse transcription polymerase chain reaction with degenerate oligonucleotides to study megakaryocytic cell lines (MEG-01, DAMI), and primary human MK purified from adult and cord blood. Using this approach, 13 out of 40 clones isolated from cell lines, 10 out of 21 from cord MK, and 11 out of 21 from adult MK were identified as HoxA10, while HoxA11 and HoxD11 sequences were not detected. The normal genomic sequences for the human HoxA10, -A11, and -D11 genes were then determined and sequenced in 10 unrelated individuals with TAR syndrome. In all patients the derived amino acid sequence for the three Hox genes was identical to normal controls. Southern blotting did not reveal genomic rearrangements or deletions at these loci, and in two patients intact HoxA10 transcripts were detected by amplification in myeloid cells. Although these studies cannot completely exclude the possibility that the TAR syndrome results from non-coding mutations that affect the level of Hox gene expression in megakaryocytes, mutations in the coding sequence of the Hox genes known to affect radial development are not a common cause of TAR syndrome.

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Year:  2002        PMID: 11841440     DOI: 10.1046/j.1365-2141.2002.03263.x

Source DB:  PubMed          Journal:  Br J Haematol        ISSN: 0007-1048            Impact factor:   6.998


  5 in total

1.  Two patterns of thrombopoietin signaling suggest no coupling between platelet production and thrombopoietin reactivity in thrombocytopenia-absent radii syndrome.

Authors:  Janine Fiedler; Gabriele Strauss; Martin Wannack; Silke Schwiebert; Kerstin Seidel; Katja Henning; Eva Klopocki; Markus Schmugge; Gerhard Gaedicke; Harald Schulze
Journal:  Haematologica       Date:  2011-09-20       Impact factor: 9.941

2.  Complex inheritance pattern resembling autosomal recessive inheritance involving a microdeletion in thrombocytopenia-absent radius syndrome.

Authors:  Eva Klopocki; Harald Schulze; Gabriele Strauss; Claus-Eric Ott; Judith Hall; Fabienne Trotier; Silke Fleischhauer; Lynn Greenhalgh; Ruth A Newbury-Ecob; Luitgard M Neumann; Rolf Habenicht; Rainer König; Eva Seemanova; André Megarbane; Hans-Hilger Ropers; Reinhard Ullmann; Denise Horn; Stefan Mundlos
Journal:  Am J Hum Genet       Date:  2006-12-21       Impact factor: 11.025

3.  MECOM-associated syndrome: a heterogeneous inherited bone marrow failure syndrome with amegakaryocytic thrombocytopenia.

Authors:  Manuela Germeshausen; Phil Ancliff; Jaime Estrada; Markus Metzler; Eva Ponstingl; Horst Rütschle; Dirk Schwabe; Richard H Scott; Sule Unal; Angela Wawer; Bernward Zeller; Matthias Ballmaier
Journal:  Blood Adv       Date:  2018-03-27

Review 4.  Congenital amegakaryocytic thrombocytopenia and thrombocytopenia with absent radii.

Authors:  Amy E Geddis
Journal:  Hematol Oncol Clin North Am       Date:  2009-04       Impact factor: 3.722

5.  Accelerated Evolution of Limb-Related Gene Hoxd11 in the Common Ancestor of Cetaceans and Ruminants (Cetruminantia).

Authors:  Jun Li; Songyang Shang; Na Fang; Yubo Zhu; Junpeng Zhang; David M Irwin; Shuyi Zhang; Zhe Wang
Journal:  G3 (Bethesda)       Date:  2020-02-06       Impact factor: 3.154

  5 in total

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