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Journal of Zhejiang University-SCIENCE B (Biomedicine & Biotechnology)  2008, Vol. 9 Issue (11): 863-870    DOI: 10.1631/jzus.B0820163
Biomedicine     
A data-mining approach to biomarker identification from protein profiles using discrete stationary wavelet transform
Hussain MONTAZERY-KORDY, Mohammad Hossein MIRAN-BAYGI, Mohammad Hassan MORADI
Department of Electrical and Computer Engineering, Tarbiat Modares University, P.O. Box 14115-111, Tehran, Iran; Faculty of Biomedical Engineering, Amir Kabir University of Technology, P.O. Box 15875-4413, Tehran, Iran
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Abstract  Objective: To develop a new bioinformatic tool based on a data-mining approach for extraction of the most informative proteins that could be used to find the potential biomarkers for the detection of cancer. Methods: Two independent datasets from serum samples of 253 ovarian cancer and 167 breast cancer patients were used. The samples were examined by surface-enhanced laser desorption/ionization time-of-flight mass spectrometry (SELDI-TOF MS). The datasets were used to extract the informative proteins using a data-mining method in the discrete stationary wavelet transform domain. As a dimensionality reduction procedure, the hard thresholding method was applied to reduce the number of wavelet coefficients. Also, a distance measure was used to select the most discriminative coefficients. To find the potential biomarkers using the selected wavelet coefficients, we applied the inverse discrete stationary wavelet transform combined with a two-sided t-test. Results: From the ovarian cancer dataset, a set of five proteins were detected as potential biomarkers that could be used to identify the cancer patients from the healthy cases with accuracy, sensitivity, and specificity of 100%. Also, from the breast cancer dataset, a set of eight proteins were found as the potential biomarkers that could separate the healthy cases from the cancer patients with accuracy of 98.26%, sensitivity of 100%, and specificity of 95.6%. Conclusion: The results have shown that the new bioinformatic tool can be used in combination with the high-throughput proteomic data such as SELDI-TOF MS to find the potential biomarkers with high discriminative power.

Key wordsProteomics      Discrete stationary wavelet transform      Data mining      Feature selection      Biomarker      Cancer classification     
Received: 15 May 2008     
CLC:  R73  
Cite this article:

Hussain MONTAZERY-KORDY, Mohammad Hossein MIRAN-BAYGI, Mohammad Hassan MORADI. A data-mining approach to biomarker identification from protein profiles using discrete stationary wavelet transform. Journal of Zhejiang University-SCIENCE B (Biomedicine & Biotechnology), 2008, 9(11): 863-870.

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http://www.zjujournals.com/xueshu/zjus-b/10.1631/jzus.B0820163     OR     http://www.zjujournals.com/xueshu/zjus-b/Y2008/V9/I11/863

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