Literature DB >> 24345756

The evolution of cellular deficiency in GATA2 mutation.

Rachel E Dickinson1, Paul Milne, Laura Jardine, Sasan Zandi, Sabina I Swierczek, Naomi McGovern, Sharon Cookson, Zaveyna Ferozepurwalla, Alexander Langridge, Sarah Pagan, Andrew Gennery, Tarja Heiskanen-Kosma, Sari Hämäläinen, Mikko Seppänen, Matthew Helbert, Eleni Tholouli, Eleonora Gambineri, Sigrún Reykdal, Magnús Gottfreðsson, James E Thaventhiran, Emma Morris, Gideon Hirschfield, Alex G Richter, Stephen Jolles, Chris M Bacon, Sophie Hambleton, Muzlifah Haniffa, Yenan Bryceson, Carl Allen, Josef T Prchal, John E Dick, Venetia Bigley, Matthew Collin.   

Abstract

Constitutive heterozygous GATA2 mutation is associated with deafness, lymphedema, mononuclear cytopenias, infection, myelodysplasia (MDS), and acute myeloid leukemia. In this study, we describe a cross-sectional analysis of 24 patients and 6 relatives with 14 different frameshift or substitution mutations of GATA2. A pattern of dendritic cell, monocyte, B, and natural killer (NK) lymphoid deficiency (DCML deficiency) with elevated Fms-like tyrosine kinase 3 ligand (Flt3L) was observed in all 20 patients phenotyped, including patients with Emberger syndrome, monocytopenia with Mycobacterium avium complex (MonoMAC), and MDS. Four unaffected relatives had a normal phenotype indicating that cellular deficiency may evolve over time or is incompletely penetrant, while 2 developed subclinical cytopenias or elevated Flt3L. Patients with GATA2 mutation maintained higher hemoglobin, neutrophils, and platelets and were younger than controls with acquired MDS and wild-type GATA2. Frameshift mutations were associated with earlier age of clinical presentation than substitution mutations. Elevated Flt3L, loss of bone marrow progenitors, and clonal myelopoiesis were early signs of disease evolution. Clinical progression was associated with increasingly elevated Flt3L, depletion of transitional B cells, CD56(bright) NK cells, naïve T cells, and accumulation of terminally differentiated NK and CD8(+) memory T cells. These studies provide a framework for clinical and laboratory monitoring of patients with GATA2 mutation and may inform therapeutic decision-making.

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Year:  2013        PMID: 24345756      PMCID: PMC3916878          DOI: 10.1182/blood-2013-07-517151

Source DB:  PubMed          Journal:  Blood        ISSN: 0006-4971            Impact factor:   22.113


  54 in total

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Authors:  P G N J Mutsaers; A A van de Loosdrecht; K Tawana; C Bödör; J Fitzgibbon; F H Menko
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4.  Antimicrobial activity of mucosal-associated invariant T cells.

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Journal:  Nat Immunol       Date:  2010-06-27       Impact factor: 25.606

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Authors:  J Kaur; D Catovsky; H Valdimarsson; O Jensson; A S Spiers
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7.  High frequency of GATA2 mutations in patients with mild chronic neutropenia evolving to MonoMac syndrome, myelodysplasia, and acute myeloid leukemia.

Authors:  Marlène Pasquet; Christine Bellanné-Chantelot; Suzanne Tavitian; Naïs Prade; Blandine Beaupain; Olivier Larochelle; Arnaud Petit; Pierre Rohrlich; Christophe Ferrand; Eric Van Den Neste; Hélène A Poirel; Thierry Lamy; Marie Ouachée-Chardin; Véronique Mansat-De Mas; Jill Corre; Christian Récher; Geneviève Plat; Françoise Bachelerie; Jean Donadieu; Eric Delabesse
Journal:  Blood       Date:  2012-12-06       Impact factor: 22.113

8.  NK cell terminal differentiation: correlated stepwise decrease of NKG2A and acquisition of KIRs.

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9.  GATA2 haploinsufficiency caused by mutations in a conserved intronic element leads to MonoMAC syndrome.

Authors:  Amy P Hsu; Kirby D Johnson; E Liana Falcone; Rajendran Sanalkumar; Lauren Sanchez; Dennis D Hickstein; Jennifer Cuellar-Rodriguez; Jacob E Lemieux; Christa S Zerbe; Emery H Bresnick; Steven M Holland
Journal:  Blood       Date:  2013-03-15       Impact factor: 22.113

10.  Mutations in GATA2 cause human NK cell deficiency with specific loss of the CD56(bright) subset.

Authors:  Emily M Mace; Amy P Hsu; Linda Monaco-Shawver; George Makedonas; Joshua B Rosen; Lesia Dropulic; Jeffrey I Cohen; Eugene P Frenkel; John C Bagwell; John L Sullivan; Christine A Biron; Christine Spalding; Christa S Zerbe; Gulbu Uzel; Steven M Holland; Jordan S Orange
Journal:  Blood       Date:  2013-01-30       Impact factor: 22.113

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Authors:  Daria V Babushok; Monica Bessler; Timothy S Olson
Journal:  Leuk Lymphoma       Date:  2015-12-23

3.  Sequencing of RNA in single cells reveals a distinct transcriptome signature of hematopoiesis in GATA2 deficiency.

Authors:  Zhijie Wu; Shouguo Gao; Carrie Diamond; Sachiko Kajigaya; Jinguo Chen; Rongye Shi; Cindy Palmer; Amy P Hsu; Katherine R Calvo; Dennis D Hickstein; Steven M Holland; Neal S Young
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4.  GATA2 deficiency and human hematopoietic development modeled using induced pluripotent stem cells.

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Journal:  Best Pract Res Clin Haematol       Date:  2014-11-12       Impact factor: 3.020

Review 6.  The GATA factor revolution in hematology.

Authors:  Koichi R Katsumura; Emery H Bresnick
Journal:  Blood       Date:  2017-02-08       Impact factor: 22.113

7.  Donor-derived MDS/AML in families with germline GATA2 mutation.

Authors:  Pallavi Galera; Amy P Hsu; Weixin Wang; Stephenie Droll; Rui Chen; Jason R Schwartz; Jeffery M Klco; Sally Arai; Luke Maese; Christa Zerbe; Mark J Parta; Neal S Young; Steven M Holland; Dennis D Hickstein; Katherine R Calvo
Journal:  Blood       Date:  2018-09-19       Impact factor: 22.113

8.  A novel disease-causing synonymous exonic mutation in GATA2 affecting RNA splicing.

Authors:  Claudia Wehr; Katja Grotius; Silvia Casadei; Dorothee Bleckmann; Sebastian F N Bode; Björn C Frye; Maximilian Seidl; Suleyman Gulsuner; Mary-Claire King; Mary-Beth Percival; Colin C Pritchard; Tom Walsh; David Wu; Siobán Keel; Ulrich Salzer
Journal:  Blood       Date:  2018-07-20       Impact factor: 22.113

Review 9.  Transcription factor mutations as a cause of familial myeloid neoplasms.

Authors:  Jane E Churpek; Emery H Bresnick
Journal:  J Clin Invest       Date:  2019-02-01       Impact factor: 14.808

Review 10.  Primary immunodeficiency update: Part II. Syndromes associated with mucocutaneous candidiasis and noninfectious cutaneous manifestations.

Authors:  Dominique C Pichard; Alexandra F Freeman; Edward W Cowen
Journal:  J Am Acad Dermatol       Date:  2015-09       Impact factor: 11.527

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