DocumentCode
991525
Title
Entropic analysis of biological growth models
Author
Ling, Yibei ; He, Bin
Author_Institution
Sch. of Comput. Sci., Florida Int. Univ., Miami, FL, USA
Volume
40
Issue
12
fYear
1993
Firstpage
1193
Lastpage
1200
Abstract
Using the concept of isomorphism, we provide a quantitative description of the thermodynamic characteristics of the Logistic, Bertalanffy, and Gompertz biological growth models. With the help of the entropy expressions derived from the isomorphic probabilistic models, we show that the Logistic, Bertalanffy, and Gompertz growth models have distinct thermodynamic characteristics, though they have similar sigmoid trajectories in the time domain. The entropic analysis further reveals that the Gompertz model corresponds to a completely open system, in which cells receive adequate nutrition and competition among cells can be neglected. We have also applied the present entropic analysis to the modeling of tumor growth. Our results suggest that the entropic expression provides a theoretical justification for using the Gompertz model for describing the development of tumor cell populations. The entropic analysis may play an important role in studying the mechanisms of different biological growth processes.
Keywords
biocontrol; cellular biophysics; entropy; physiological models; probability; Bertalanffy model; Gompertz model; Logistic model; adequate nutrition; biological growth models; cells; completely open system; entropic analysis; entropy expressions; isomorphic probabilistic models; isomorphism; sigmoid trajectories; thermodynamic characteristics; time domain; tumor cell populations; tumor growth; Biological system modeling; Computer science; Entropy; Equations; Helium; Logistics; Neoplasms; Open systems; Thermodynamics; Tumors; Animals; Cell Transformation, Neoplastic; Growth; Humans; Logistic Models; Models, Biological; Probability; Thermodynamics; Tumor Cells, Cultured;
fLanguage
English
Journal_Title
Biomedical Engineering, IEEE Transactions on
Publisher
ieee
ISSN
0018-9294
Type
jour
DOI
10.1109/10.250574
Filename
250574
Link To Document