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PMID: 15084693 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Use of gene-expression profiling to identify prognostic subclasses in adult acute myeloid leukemia.

The New England journal of medicine ·Vol. 350 ·No. 16 ·2004-04-15 ·Pages 1605-16

Bullinger L, Döhner K, Bair E, Fröhling S, Schlenk RF, Tibshirani R, Döhner H, Pollack JR

Abstract

In patients with acute myeloid leukemia (AML), the presence or absence of recurrent cytogenetic aberrations is used to identify the appropriate therapy. However, the current classification system does not fully reflect the molecular heterogeneity of the disease, and treatment stratification is difficult, especially for patients with intermediate-risk AML with a normal karyotype. We used complementary-DNA microarrays to determine the levels of gene expression in peripheral-blood samples or bone marrow samples from 116 adults with AML (including 45 with a normal karyotype). We used unsupervised hierarchical clustering analysis to identify molecular subgroups with distinct gene-expression signatures. Using a training set of samples from 59 patients, we applied a novel supervised learning algorithm to devise a gene-expression-based clinical-outcome predictor, which we then tested using an independent validation group comprising the 57 remaining patients. Unsupervised analysis identified new molecular subtypes of AML, including two prognostically relevant subgroups in AML with a normal karyotype. Using the supervised learning algorithm, we constructed an optimal 133-gene clinical-outcome predictor, which accurately predicted overall survival among patients in the independent validation group (P=0.006), including the subgroup of patients with AML with a normal karyotype (P=0.046). In multivariate analysis, the gene-expression predictor was a strong independent prognostic factor (odds ratio, 8.8; 95 percent confidence interval, 2.6 to 29.3; P<0.001). The use of gene-expression profiling improves the molecular classification of adult AML.

MeSH Terms
Acute Disease Adult Algorithms Chromosome Aberrations Cluster Analysis Gene Expression Gene Expression Profiling/methods Humans Karyotyping Leukemia, Myeloid/classification,genetics,mortality Multivariate Analysis Mutation Oligonucleotide Array Sequence Analysis/methods Prognosis Risk Assessment/methods Survival Analysis
Authors & Affiliations
8 authors, click to expand affiliations / ORCID
Bullinger Lars
Department of Pathology, Stanford University, Stanford, Calif, USA.
Döhner Konstanze
Bair Eric
Fröhling Stefan
Schlenk Richard F
Tibshirani Robert
Döhner Hartmut
Pollack Jonathan R
Article Info
Journal
The New England journal of medicine
Abbr.
N Engl J Med
ISSN
1533-4406
Published
2004-04-15
Pages
1605-16
Language
English
Region
United States
NLM ID
0255562
Subset
IM
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