Mathematical modeling of cell population dynamics in the colonic crypt and in colorectal cancer

Colorectal cancer is initiated in colonic crypts. A succession of genetic mutations or epigenetic changes can lead to homeostasis in the crypt being overcome, and subsequent unbounded growth. We consider the dynamics of a single colorectal crypt by using a compartmental approach [Tomlinson IPM, Bo...

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Main Authors: Johnston, M, Edwards, C, Bodmer, W, Maini, P, Chapman, S
Format: Journal article
Published: 2007
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author Johnston, M
Edwards, C
Bodmer, W
Maini, P
Chapman, S
author_facet Johnston, M
Edwards, C
Bodmer, W
Maini, P
Chapman, S
author_sort Johnston, M
collection OXFORD
description Colorectal cancer is initiated in colonic crypts. A succession of genetic mutations or epigenetic changes can lead to homeostasis in the crypt being overcome, and subsequent unbounded growth. We consider the dynamics of a single colorectal crypt by using a compartmental approach [Tomlinson IPM, Bodmer WF (1995) Proc Natl Acad Sci USA 92: 11130-11134], which accounts for populations of stem cells, differential cells, and transit cells. That original model made the simplifying assumptions that each cell popuation divides synchronously, but we relax these assumptions by adopting an age-structured approach that models asynchronous cell division, and by using a continuum model. We discuss two mechanims that could regulate the growth of cell numbers and maintain the equilibrium that is normally observed in the crypt. The first will always maintain an equilibrium for all parameter values, whereas the second can allow unbounded proliferation if the net per capita growth rates are large enough. Results show that an increase in cell renewal, which is equivalent to a failure of programmed cell death or of differentiation, can lead to the growth of cancers. The second model can be used to explain the long lag phases in tumor growth, during which news, higher equilibria are reached, before unlimited growth in cell number ensues.
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spelling oxford-uuid:0b6465b1-06d9-44a4-83df-8ee0b4fe0cba2022-03-26T09:29:04ZMathematical modeling of cell population dynamics in the colonic crypt and in colorectal cancerJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:0b6465b1-06d9-44a4-83df-8ee0b4fe0cbaMathematical Institute - ePrints2007Johnston, MEdwards, CBodmer, WMaini, PChapman, SColorectal cancer is initiated in colonic crypts. A succession of genetic mutations or epigenetic changes can lead to homeostasis in the crypt being overcome, and subsequent unbounded growth. We consider the dynamics of a single colorectal crypt by using a compartmental approach [Tomlinson IPM, Bodmer WF (1995) Proc Natl Acad Sci USA 92: 11130-11134], which accounts for populations of stem cells, differential cells, and transit cells. That original model made the simplifying assumptions that each cell popuation divides synchronously, but we relax these assumptions by adopting an age-structured approach that models asynchronous cell division, and by using a continuum model. We discuss two mechanims that could regulate the growth of cell numbers and maintain the equilibrium that is normally observed in the crypt. The first will always maintain an equilibrium for all parameter values, whereas the second can allow unbounded proliferation if the net per capita growth rates are large enough. Results show that an increase in cell renewal, which is equivalent to a failure of programmed cell death or of differentiation, can lead to the growth of cancers. The second model can be used to explain the long lag phases in tumor growth, during which news, higher equilibria are reached, before unlimited growth in cell number ensues.
spellingShingle Johnston, M
Edwards, C
Bodmer, W
Maini, P
Chapman, S
Mathematical modeling of cell population dynamics in the colonic crypt and in colorectal cancer
title Mathematical modeling of cell population dynamics in the colonic crypt and in colorectal cancer
title_full Mathematical modeling of cell population dynamics in the colonic crypt and in colorectal cancer
title_fullStr Mathematical modeling of cell population dynamics in the colonic crypt and in colorectal cancer
title_full_unstemmed Mathematical modeling of cell population dynamics in the colonic crypt and in colorectal cancer
title_short Mathematical modeling of cell population dynamics in the colonic crypt and in colorectal cancer
title_sort mathematical modeling of cell population dynamics in the colonic crypt and in colorectal cancer
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