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PMID: 8971186 Published · ppublish English Journal Article

A reaction-diffusion model of cancer invasion.

Cancer research ·Vol. 56 ·No. 24 ·1996-12-15 ·Pages 5745-53

Gatenby RA, Gawlinski ET

Abstract

We present mathematical analyses, experimental data, and clinical observations which support our novel hypothesis that tumor-induced alteration of microenvironmental pH may provide a simple but complete mechanism for cancer invasion. A reaction-diffusion model describing the spatial distribution and temporal development of tumor tissue, normal tissue, and excess H+ ion concentration is presented. The model predicts a pH gradient extending from the tumor-host interface, which is confirmed by reanalysis of existing experimental data. Investigation of the structure and dynamics of the tumor-host interaction within the context of the model demonstrates a transition from benign to malignant growth analogous to the adenoma-carcinoma sequence. The effect of biological parameters critical to controlling this transition are supported by experimental and clinical observations. Tumor wave front velocities determined via a marginal stability analysis of the model equations are consistent with in vivo tumor growth rates. The model predicts a previously unrecognized hypocellular interstitial gap at the tumor-host interface which we demonstrate both in vivo and in vitro. A direct correlation between the interfacial morphology and tumor wave front velocity provides an explicit, testable, clinically important prediction.

MeSH Terms
Carcinoma, Squamous Cell/metabolism,pathology Disease Progression Head and Neck Neoplasms/metabolism,pathology Humans Hydrogen-Ion Concentration Models, Biological Neoplasm Invasiveness
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Gatenby R A
Department of Diagnostic Imaging, College of Medicine, Temple University, Philadelphia, Pennsylvania 19122, USA.
Gawlinski E T
Article Info
Journal
Cancer research
Abbr.
Cancer Res
ISSN
0008-5472
Published
1996-12-15
Pages
5745-53
Language
English
Region
United States
NLM ID
2984705R
Subset
IM
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