DocumentCode :
1762751
Title :
The RNA Polymerase Flow Model of Gene Transcription
Author :
Edri, Shlomit ; Gazit, Eran ; Cohen, Emmanuel ; Tuller, Tamir
Author_Institution :
Dept. of Biomed. Eng., Tel-Aviv Univ., Tel-Aviv, Israel
Volume :
8
Issue :
1
fYear :
2014
fDate :
Feb. 2014
Firstpage :
54
Lastpage :
64
Abstract :
Gene expression is a fundamental cellular process by which proteins are synthesized based on the information coded in the genes. The two major steps of this process are the transcription of the DNA segment corresponding to a gene to mRNA molecules and the translation of the mRNA molecules to proteins by the ribosome. Thus, understanding, modeling and engineering the different stages of this process have both important biotechnological applications and contributions to basic life science. In previous studies we have introduced the Homogenous Ribosome Flow Model (HRFM) and demonstrated its advantages in analyses of the translation process. In this study we introduce the RNA Polymerase Flow Model (RPFM), a non trivial extension of the HRFM, which also includes a backward flow and can be used for modeling transcription and maybe other similar processes. We compare the HRFM and the RPFM in the three regimes of the transcription process: rate limiting initiation, rate limiting elongation and rate limiting termination via a simulative and analytical analysis. In addition, based on experimental data, we show that RPFM is a better choice for modeling transcription process.
Keywords :
RNA; biochemistry; biomechanics; cellular biophysics; elongation; enzymes; genetics; molecular biophysics; proteins; DNA segment; HRFM; RNA polymerase flow model; RPFM; basic life science; biotechnological applications; fundamental cellular process; gene expression; gene transcription; mRNA molecules; proteins; rate limiting elongation; rate limiting initiation; rate limiting termination; ribosome; Biological system modeling; DNA; Mathematical model; Polymers; Proteins; RNA; Steady-state; Flow models; RNA polymerase; gene expression model; systems biology; systems genomics and proteomics; transcription elongation;
fLanguage :
English
Journal_Title :
Biomedical Circuits and Systems, IEEE Transactions on
Publisher :
ieee
ISSN :
1932-4545
Type :
jour
DOI :
10.1109/TBCAS.2013.2290063
Filename :
6737286
Link To Document :
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