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PMID: 18445660 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Improved grading and survival prediction of human astrocytic brain tumors by artificial neural network analysis of gene expression microarray data.

Molecular cancer therapeutics ·Vol. 7 ·No. 5 ·2008-05-00 ·Pages 1013-24

Petalidis LP, Oulas A, Backlund M, Wayland MT, Liu L, Plant K, Happerfield L, Freeman TC, Poirazi P, Collins VP

Abstract

Histopathologic grading of astrocytic tumors based on current WHO criteria offers a valuable but simplified representation of oncologic reality and is often insufficient to predict clinical outcome. In this study, we report a new astrocytic tumor microarray gene expression data set (n = 65). We have used a simple artificial neural network algorithm to address grading of human astrocytic tumors, derive specific transcriptional signatures from histopathologic subtypes of astrocytic tumors, and asses whether these molecular signatures define survival prognostic subclasses. Fifty-nine classifier genes were identified and found to fall within three distinct functional classes, that is, angiogenesis, cell differentiation, and lower-grade astrocytic tumor discrimination. These gene classes were found to characterize three molecular tumor subtypes denoted ANGIO, INTER, and LOWER. Grading of samples using these subtypes agreed with prior histopathologic grading for both our data set (96.15%) and an independent data set. Six tumors were particularly challenging to diagnose histopathologically. We present an artificial neural network grading for these samples and offer an evidence-based interpretation of grading results using clinical metadata to substantiate findings. The prognostic value of the three identified tumor subtypes was found to outperform histopathologic grading as well as tumor subtypes reported in other studies, indicating a high survival prognostic potential for the 59 gene classifiers. Finally, 11 gene classifiers that differentiate between primary and secondary glioblastomas were also identified.

MeSH Terms
Algorithms Apoptosis Regulatory Proteins Astrocytoma/classification,diagnosis,genetics,mortality Biomarkers, Tumor/genetics Brain Neoplasms/classification,diagnosis,genetics,mortality Gene Expression Profiling/methods Gene Expression Regulation, Neoplastic Humans Intracellular Signaling Peptides and Proteins/genetics Neural Networks, Computer Oligonucleotide Array Sequence Analysis/methods Phosphoproteins/genetics Prognosis Reproducibility of Results Survival Rate
Chemicals
Apoptosis Regulatory Proteins Biomarkers, Tumor Intracellular Signaling Peptides and Proteins PEA15 protein, human Phosphoproteins
Authors & Affiliations
10 authors, click to expand affiliations / ORCID
Petalidis Lawrence P
Division of Molecular Histopathology, Department of Pathology, University of Cambridge, Addenbrooke's Hospital, Cambridge, United Kingdom.
Oulas Anastasis
Backlund Magnus
Wayland Matthew T
Liu Lu
Plant Karen
Happerfield Lisa
Freeman Tom C
Poirazi Panayiota
Collins V Peter
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Article Info
Journal
Molecular cancer therapeutics
Abbr.
Mol Cancer Ther
ISSN
1535-7163
Published
2008-05-00
Epub
2008-00-29
Pages
1013-24
Language
English
Region
United States
NLM ID
101132535
PMCID
PMC2819720
Subset
IM
Grants
Cancer Research UK · A6618 · United Kingdom
Medical Research Council · United Kingdom
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