Literature DB >> 10936857

Diagnosis and characterization of acute erythroleukemia subsets by determining the percentages of myeloblasts and proerythroblasts in 69 cases.

A Kowal-Vern1, F M Mazzella, J D Cotelingam, M A Shrit, J T Rector, H R Schumacher.   

Abstract

Acute erythroleukemia (FAB M6) is a rare heterogeneous disease with an increase in red cell precursors and myeloblasts. Three subsets have been described: M6A (myeloblast-rich erythroleukemia); M6B (proerythroblast-rich erythroleukemia); and M6C (myeloblast- and proerythroblast-rich mixed variant). This study was undertaken to define and compare the clinical courses and survival outcomes among M6A, M6B, and M6C variants of erythroleukemia. Sixty-nine cases of M6 leukemia were categorized as consisting of >/=50% erythroid of all nucleated cells and M6A with >/=30% myeloblasts/nonerythroid component; M6B with >/=30% proerythroblasts/erythroid component; and M6C with >/=30% myeloblasts and >/=30% proerythroblasts. The demographics, cell type distribution, and survival (mean +/- sd) of these groups were compared. There were 32 M6A, 26 M6B, and 11 M6C patients. No significant difference was seen among the groups in age, sex, or treatment. Compared to M6A, both the M6B (P< 0.0001) and M6C (P< 0.0001) variants showed a statistically significant increase in the percentage of bone marrow erythroid cells, proerythroblasts, and the proerythroblasts/erythroid ratios. Comparing the groups for survival, M6B (3 +/- 3.6 months) versus M6A (25 +/- 28 months), P< 0. 002, and M6C (10 +/- 13 months) versus M6A, P< 0.01 had a poorer prognosis. Calculating the proerythroblasts as a component of total bone marrow erythroids provides a complimentary method for delineating the pure red cell erythroleukemia (M6B) and mixed variant (M6C), similar to that for the myeloid/erythroid (M6A) leukemia. Now that it is possible to delineate erythroleukemia subtypes, innovative treatments are indicated to target the malignant erythroid population, which is resistant to myeloid-based therapies. Copyright 2000 Wiley-Liss, Inc.

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Year:  2000        PMID: 10936857     DOI: 10.1002/1096-8652(200009)65:1<5::aid-ajh2>3.0.co;2-u

Source DB:  PubMed          Journal:  Am J Hematol        ISSN: 0361-8609            Impact factor:   10.047


  9 in total

1.  Global DNA demethylation during mouse erythropoiesis in vivo.

Authors:  Jeffrey R Shearstone; Ramona Pop; Christoph Bock; Patrick Boyle; Alexander Meissner; Merav Socolovsky
Journal:  Science       Date:  2011-11-11       Impact factor: 47.728

2.  Clinical Characteristics and Prognosis of 167 Cases of Acute Erythroleukemia.

Authors:  Zhi-Qiang Ma; Ji-Hong Pan; Da-Xin Jing; Chong-Yan Xu
Journal:  Indian J Hematol Blood Transfus       Date:  2016-04-08       Impact factor: 0.900

3.  Genomic subtyping and therapeutic targeting of acute erythroleukemia.

Authors:  Ilaria Iacobucci; Ji Wen; Manja Meggendorfer; John K Choi; Lei Shi; Stanley B Pounds; Catherine L Carmichael; Katherine E Masih; Sarah M Morris; R Coleman Lindsley; Laura J Janke; Thomas B Alexander; Guangchun Song; Chunxu Qu; Yongjin Li; Debbie Payne-Turner; Daisuke Tomizawa; Nobutaka Kiyokawa; Marcus Valentine; Virginia Valentine; Giuseppe Basso; Franco Locatelli; Eric J Enemark; Shirley K Y Kham; Allen E J Yeoh; Xiaotu Ma; Xin Zhou; Edgar Sioson; Michael Rusch; Rhonda E Ries; Elliot Stieglitz; Stephen P Hunger; Andrew H Wei; L Bik To; Ian D Lewis; Richard J D'Andrea; Benjamin T Kile; Anna L Brown; Hamish S Scott; Christopher N Hahn; Paula Marlton; Deqing Pei; Cheng Cheng; Mignon L Loh; Benjamin L Ebert; Soheil Meshinchi; Torsten Haferlach; Charles G Mullighan
Journal:  Nat Genet       Date:  2019-03-29       Impact factor: 38.330

4.  Antiproliferative effect of upregulation of hsa-let-7c-5p in human acute erythroleukemia cells.

Authors:  Deniz Mortazavi; Mohammadreza Sharifi
Journal:  Cytotechnology       Date:  2018-08-02       Impact factor: 2.058

5.  Adult acute erythroleukemia: an analysis of 91 patients treated at a single institution.

Authors:  F P S Santos; S Faderl; G Garcia-Manero; C Koller; M Beran; S O'Brien; S Pierce; E J Freireich; X Huang; G Borthakur; C Bueso-Ramos; M de Lima; M Keating; J Cortes; H Kantarjian; F Ravandi
Journal:  Leukemia       Date:  2009-09-10       Impact factor: 11.528

6.  Study of clinical, haematological and cytogenetic profile of patients with acute erythroid leukaemia.

Authors:  Jacob Abraham Linu; Ms Namratha Udupa; D S Madhumathi; K C Lakshmaiah; K Govind Babu; D Lokanatha; Mc Suresh Babu; K N Lokesh; L K Rajeev; A H Rudresha
Journal:  Ecancermedicalscience       Date:  2017-01-10

7.  Clinical Outcomes of 217 Patients with Acute Erythroleukemia According to Treatment Type and Line: A Retrospective Multinational Study.

Authors:  Antonio M Almeida; Thomas Prebet; Raphael Itzykson; Fernando Ramos; Haifa Al-Ali; Jamile Shammo; Ricardo Pinto; Luca Maurillo; Jaime Wetzel; Pellegrino Musto; Arjan A Van De Loosdrecht; Maria Joao Costa; Susana Esteves; Sonja Burgstaller; Reinhard Stauder; Eva M Autzinger; Alois Lang; Peter Krippl; Dietmar Geissler; Jose Francisco Falantes; Carmen Pedro; Joan Bargay; Guillermo Deben; Ana Garrido; Santiago Bonanad; Maria Diez-Campelo; Sylvain Thepot; Lionel Ades; Wolfgang R Sperr; Peter Valent; Pierre Fenaux; Mikkael A Sekeres; Richard Greil; Lisa Pleyer
Journal:  Int J Mol Sci       Date:  2017-04-14       Impact factor: 5.923

Review 8.  Oncogenes and the Origins of Leukemias.

Authors:  Geoffrey Brown
Journal:  Int J Mol Sci       Date:  2022-02-18       Impact factor: 5.923

Review 9.  Are Leukaemic Stem Cells Restricted to a Single Cell Lineage?

Authors:  Geoffrey Brown; Lucía Sánchez; Isidro Sánchez-García
Journal:  Int J Mol Sci       Date:  2019-12-19       Impact factor: 5.923

  9 in total

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