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   Classification of transcription factors using protein primary structure  
   
نویسنده yang x.-y. ,shi x.-h. ,meng x. ,li x.-l. ,lin k. ,qian z.-l. ,feng k.-y. ,kong x.-y. ,cai y.-d.
منبع protein and peptide letters - 2010 - دوره : 17 - شماره : 7 - صفحه:899 -908
چکیده    The transcription factor (tf) is a protein that binds dna at specific site to help regulate the transcription from dna to rna. the mechanism of transcriptional regulatory can be much better understood if the category of transcription factors is known. we introduce a system which can automatically categorize transcription factors using their primary structures. a feature analysis strategy called mrmr (minimum redundancy,maximum relevance) is used to analyze the contribution of the tf properties towards the tf classification. mrmr is coupled with forward feature selection to choose an optimized feature subset for the classification. tf properties are composed of the amino acid composition and the physiochemical characters of the proteins. these properties will generate over a hundred features/parameters. we put all the features/parameters into a classifier,called nna (nearest neighbor algorithm),for the classification. the classification accuracy is 93.81%,evaluated by a jackknife test. feature analysis using mrmr algorithm shows that secondary structure,amino acid composition and hydrophobicity are the most relevant features for classification. a free online classifier is available at http://app3.biosino.org/132dvc/tf/. © 2010 bentham science publishers ltd.
کلیدواژه Feature analysis; Feature selection; mRMR; Nearest neighbor algorithm; Transcription factor
آدرس cas-mpg partner institute for computational biology,shanghai institutes for biological sciences,chinese academy of sciences,320 yueyang road, China, institute of health science shanghai institute for biological science chinese academy of science,225 south chongqing road,shanghai, China, cas-mpg partner institute for computational biology,shanghai institutes for biological sciences,chinese academy of sciences,320 yueyang road, China, institute of health science shanghai institute for biological science chinese academy of science,225 south chongqing road,shanghai, China, cas-mpg partner institute for computational biology,shanghai institutes for biological sciences,chinese academy of sciences,320 yueyang road, China, graduate school of the chinese academy of sciences,19 yuquan road,beijing 100039,china,bioinformatics center,key lab of molecular systems biology,shanghai institutes for biological sciences,chinese academy of sciences,320 yueyang road, China, division of imaging science and biomedical engineering,the university of manchester,g424 stopford building, United Kingdom, institute of health science shanghai institute for biological science chinese academy of science,225 south chongqing road,shanghai, China, institute of system biology,shanghai university,99 shangda road,shanghai 200244,china,centre for computational systems biology,fudan university,220 handan road, China
 
     
   
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