Cargando…

A New Mathematical Model for Controlling Tumor Growth Based on Microenvironment Acidity and Oxygen Concentration

Hypoxia and the pH level of the tumor microenvironment have a great impact on the treatment of tumors. Here, the tumor growth is controlled by regulating the oxygen concentration and the acidity of the tumor microenvironment by introducing a two-dimensional multiscale cellular automata model of avas...

Descripción completa

Detalles Bibliográficos
Autores principales: Pourhasanzade, F., Sabzpoushan, S. H.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7857879/
https://www.ncbi.nlm.nih.gov/pubmed/33575354
http://dx.doi.org/10.1155/2021/8886050
_version_ 1783646532431511552
author Pourhasanzade, F.
Sabzpoushan, S. H.
author_facet Pourhasanzade, F.
Sabzpoushan, S. H.
author_sort Pourhasanzade, F.
collection PubMed
description Hypoxia and the pH level of the tumor microenvironment have a great impact on the treatment of tumors. Here, the tumor growth is controlled by regulating the oxygen concentration and the acidity of the tumor microenvironment by introducing a two-dimensional multiscale cellular automata model of avascular tumor growth. The spatiotemporal evolution of tumor growth and metabolic variations is modeled based on biological assumptions, physical structure, states of cells, and transition rules. Each cell is allocated to one of the following states: proliferating cancer, nonproliferating cancer, necrotic, and normal cells. According to the response of the microenvironmental conditions, each cell consumes/produces metabolic factors and updates its state based on some stochastic rules. The input parameters are compatible with cancer biology using experimental data. The effect of neighborhoods during mitosis and simulating spatial heterogeneity is studied by considering multicellular layer structure of tumor. A simple Darwinist mutation is considered by introducing a critical parameter (Nmm) that affects division probability of the proliferative tumor cells based on the microenvironmental conditions and cancer hallmarks. The results show that Nmm regulation has a significant influence on the dynamics of tumor growth, the growth fraction, necrotic fraction, and the concentration levels of the metabolic factors. The model not only is able to simulate the in vivo tumor growth quantitatively and qualitatively but also can simulate the concentration of metabolic factors, oxygen, and acidity graphically. The results show the spatial heterogeneity effects on the proliferation of cancer cells and the rest of the system. By increasing Nmm, tumor shrinkage and significant increasing in the oxygen concentration and the pH value of the tumor microenvironment are observed. The results demonstrate the model's ability, providing an essential tool for simulating different tumor evolution scenarios of a patient and reliable prediction of spatiotemporal progression of tumors for utilizing in personalized therapy.
format Online
Article
Text
id pubmed-7857879
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher Hindawi
record_format MEDLINE/PubMed
spelling pubmed-78578792021-02-10 A New Mathematical Model for Controlling Tumor Growth Based on Microenvironment Acidity and Oxygen Concentration Pourhasanzade, F. Sabzpoushan, S. H. Biomed Res Int Research Article Hypoxia and the pH level of the tumor microenvironment have a great impact on the treatment of tumors. Here, the tumor growth is controlled by regulating the oxygen concentration and the acidity of the tumor microenvironment by introducing a two-dimensional multiscale cellular automata model of avascular tumor growth. The spatiotemporal evolution of tumor growth and metabolic variations is modeled based on biological assumptions, physical structure, states of cells, and transition rules. Each cell is allocated to one of the following states: proliferating cancer, nonproliferating cancer, necrotic, and normal cells. According to the response of the microenvironmental conditions, each cell consumes/produces metabolic factors and updates its state based on some stochastic rules. The input parameters are compatible with cancer biology using experimental data. The effect of neighborhoods during mitosis and simulating spatial heterogeneity is studied by considering multicellular layer structure of tumor. A simple Darwinist mutation is considered by introducing a critical parameter (Nmm) that affects division probability of the proliferative tumor cells based on the microenvironmental conditions and cancer hallmarks. The results show that Nmm regulation has a significant influence on the dynamics of tumor growth, the growth fraction, necrotic fraction, and the concentration levels of the metabolic factors. The model not only is able to simulate the in vivo tumor growth quantitatively and qualitatively but also can simulate the concentration of metabolic factors, oxygen, and acidity graphically. The results show the spatial heterogeneity effects on the proliferation of cancer cells and the rest of the system. By increasing Nmm, tumor shrinkage and significant increasing in the oxygen concentration and the pH value of the tumor microenvironment are observed. The results demonstrate the model's ability, providing an essential tool for simulating different tumor evolution scenarios of a patient and reliable prediction of spatiotemporal progression of tumors for utilizing in personalized therapy. Hindawi 2021-01-25 /pmc/articles/PMC7857879/ /pubmed/33575354 http://dx.doi.org/10.1155/2021/8886050 Text en Copyright © 2021 F. Pourhasanzade and S. H. Sabzpoushan. https://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Pourhasanzade, F.
Sabzpoushan, S. H.
A New Mathematical Model for Controlling Tumor Growth Based on Microenvironment Acidity and Oxygen Concentration
title A New Mathematical Model for Controlling Tumor Growth Based on Microenvironment Acidity and Oxygen Concentration
title_full A New Mathematical Model for Controlling Tumor Growth Based on Microenvironment Acidity and Oxygen Concentration
title_fullStr A New Mathematical Model for Controlling Tumor Growth Based on Microenvironment Acidity and Oxygen Concentration
title_full_unstemmed A New Mathematical Model for Controlling Tumor Growth Based on Microenvironment Acidity and Oxygen Concentration
title_short A New Mathematical Model for Controlling Tumor Growth Based on Microenvironment Acidity and Oxygen Concentration
title_sort new mathematical model for controlling tumor growth based on microenvironment acidity and oxygen concentration
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7857879/
https://www.ncbi.nlm.nih.gov/pubmed/33575354
http://dx.doi.org/10.1155/2021/8886050
work_keys_str_mv AT pourhasanzadef anewmathematicalmodelforcontrollingtumorgrowthbasedonmicroenvironmentacidityandoxygenconcentration
AT sabzpoushansh anewmathematicalmodelforcontrollingtumorgrowthbasedonmicroenvironmentacidityandoxygenconcentration
AT pourhasanzadef newmathematicalmodelforcontrollingtumorgrowthbasedonmicroenvironmentacidityandoxygenconcentration
AT sabzpoushansh newmathematicalmodelforcontrollingtumorgrowthbasedonmicroenvironmentacidityandoxygenconcentration