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Prediction of apoptosis protein subcellular location based on position-specific scoring matrix and isometric mapping algorithm
by
Hou, Ruichao
, Ruan, Xiaoli
, Nie, Rencan
, Zhou, Dongming
, Cao, Zicheng
in
Algorithms
/ Apoptosis
/ Covariance
/ Feature extraction
/ Isometric
/ Localization
/ Matrices (mathematics)
/ Peptide mapping
/ Performance prediction
/ Position (location)
/ Proteins
/ Support vector machines
/ Transformations (mathematics)
2019
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Prediction of apoptosis protein subcellular location based on position-specific scoring matrix and isometric mapping algorithm
by
Hou, Ruichao
, Ruan, Xiaoli
, Nie, Rencan
, Zhou, Dongming
, Cao, Zicheng
in
Algorithms
/ Apoptosis
/ Covariance
/ Feature extraction
/ Isometric
/ Localization
/ Matrices (mathematics)
/ Peptide mapping
/ Performance prediction
/ Position (location)
/ Proteins
/ Support vector machines
/ Transformations (mathematics)
2019
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While trying to remove the title from your shelf something went wrong :( Kindly try again later!
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Prediction of apoptosis protein subcellular location based on position-specific scoring matrix and isometric mapping algorithm
by
Hou, Ruichao
, Ruan, Xiaoli
, Nie, Rencan
, Zhou, Dongming
, Cao, Zicheng
in
Algorithms
/ Apoptosis
/ Covariance
/ Feature extraction
/ Isometric
/ Localization
/ Matrices (mathematics)
/ Peptide mapping
/ Performance prediction
/ Position (location)
/ Proteins
/ Support vector machines
/ Transformations (mathematics)
2019
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Prediction of apoptosis protein subcellular location based on position-specific scoring matrix and isometric mapping algorithm
Journal Article
Prediction of apoptosis protein subcellular location based on position-specific scoring matrix and isometric mapping algorithm
2019
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Overview
Apoptosis proteins are related to many diseases. Obtaining the subcellular localization information of apoptosis proteins is helpful to understand the mechanism of diseases and to develop new drugs. At present, the researchers mainly focus on the primary protein sequences, so there is still room for improvement in the prediction accuracy of the subcellular localization of apoptosis proteins. In this paper, a new method named ERT-ECT-PSSM-IS is proposed to predict apoptosis proteins based on the position-specific scoring matrix (PSSM). First, the local and global features of different directions are extracted by evolutionary row transformation (ERT) and cross-covariance of evolutionary column transformation (ECT) based on PSSM (ERT-ECT-PSSM). Second, an improved isometric mapping algorithm (I-SMA) is used to eliminate redundant features. Finally, we adopt a support vector machine (SVM) to classify our results, and the prediction accuracy is evaluated by jackknife cross-validation tests. The experimental results show that the proposed method not only extracts more abundant feature expression but also has better predictive performance and robustness for the subcellular localization of apoptosis proteins in ZD98, ZW225, and CL317 databases.
Publisher
Springer Nature B.V
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