Literature DB >> 28852947

Modeling of the metabolic energy dissipation for restricted tumor growth.

Ivana Pajic-Lijakovic1, Milan Milivojevic2.   

Abstract

Energy dissipation mostly represents unwanted outcome but in the biochemical processes it may alter the biochemical pathways. However, it is rarely considered in the literature although energy dissipation and its alteration due to the changes in cell microenvironment may improve methods for guiding chemical and biochemical processes in the desired directions. Deeper insight into the changes of metabolic activity of tumor cells exposed to osmotic stress or irradiation may offer the possibility of tumor growth reduction. In this work effects of the osmotic stress and irradiation on the thermodynamical affinity of tumor cells and their damping effects on metabolic energy dissipation were investigated and modeled. Although many various models were applied to consider the tumor restrictive growth they have not considered the metabolic energy dissipation. In this work a pseudo rheological model in the form of "the metabolic spring-pot element" is formulated to describe theoretically the metabolic susceptibility of tumor spheroid. This analog model relates the thermodynamical affinity of cell growth with the volume expansion of tumor spheroid under isotropic loading conditions. Spheroid relaxation induces anomalous nature of the metabolic energy dissipation which causes the damping effects on cell growth. The proposed model can be used for determining the metabolic energy "structure" in the context of restrictive cell growth as well as for predicting optimal doses for cancer curing in order to tailor the clinical treatment for each person and each type of cancer.

Entities:  

Keywords:  Mathematical modelling; Metabolic energy dissipation; Micro-environmentally restricted tumor growth; Thermodynamical affinity of cells, damping effects

Mesh:

Year:  2017        PMID: 28852947     DOI: 10.1007/s10863-017-9723-y

Source DB:  PubMed          Journal:  J Bioenerg Biomembr        ISSN: 0145-479X            Impact factor:   2.945


  21 in total

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5.  Metabolic scaling in solid tumours.

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8.  Modified Gompertz equation for electrotherapy murine tumor growth kinetics: predictions and new hypotheses.

Authors:  Luis E Bergues Cabrales; Juan J Godina Nava; Andrés Ramírez Aguilera; Javier A González Joa; Héctor M Camué Ciria; Maraelys Morales González; Miriam Fariñas Salas; Manuel Verdecia Jarque; Tamara Rubio González; Miguel A O'Farril Mateus; Soraida C Acosta Brooks; Fabiola Suárez Palencia; Lisset Ortiz Zamora; María C Céspedes Quevedo; Sarah Edward Seringe; Vladimir Crombet Cuitié; Idelisa Bergues Cabrales; Gustavo Sierra González
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9.  In silico analysis of cell cycle synchronisation effects in radiotherapy of tumour spheroids.

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Journal:  PLoS Comput Biol       Date:  2013-11-14       Impact factor: 4.475

10.  A mathematical model of tumor volume changes during radiotherapy.

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Journal:  ScientificWorldJournal       Date:  2013-10-03
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