Biological inferences from a mathematical model for malignant invasion.

Invasive cells show changes in adhesion, motility and the protease-antiprotease balance. In this paper the authors derive a model based on a continuum approach that describes the behaviour of the invasive cells. The invasive cells are studied in the context of their interaction with normal cells, no...

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Autores principales: Perumpanani, A, Sherratt, J, Norbury, J, Byrne, H
Formato: Journal article
Lenguaje:English
Publicado: 1996
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author Perumpanani, A
Sherratt, J
Norbury, J
Byrne, H
author_facet Perumpanani, A
Sherratt, J
Norbury, J
Byrne, H
author_sort Perumpanani, A
collection OXFORD
description Invasive cells show changes in adhesion, motility and the protease-antiprotease balance. In this paper the authors derive a model based on a continuum approach that describes the behaviour of the invasive cells. The invasive cells are studied in the context of their interaction with normal cells, noninvasive tumour cells, ECM proteins and the proteases. The authors briefly describe the methods of mathematical analysis used and then go on to highlight the biological inferences drawn from the mathematical analysis. Based on the results from the modelling the authors suggest that the movement of cells under the simultaneous effects of a haptotactic gradient and a concomitantly created chemotactic gradient is oscillatory both with respect to the speed of invasion and the wave profile of the invasive cells. They further demonstrate that the average speed of invasion can be computed as a measure of the phenotypic properties of the cell and the matrix. They use the model to suggest an intuitive explanation for the occurrence of noninvasion with high protease expression on the basis of chemotactic gradients that prevent invasion. The authors have studied the effect of the diffusivity of the protease on an invading cell and shown that increase in diffusivity initially results in enhanced invasion, but extreme increases in protease diffusivity can result in noninvasion.
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spelling oxford-uuid:aa56b8a8-2db1-4978-b948-449b8eeccd252022-03-27T03:14:25ZBiological inferences from a mathematical model for malignant invasion.Journal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:aa56b8a8-2db1-4978-b948-449b8eeccd25EnglishSymplectic Elements at Oxford1996Perumpanani, ASherratt, JNorbury, JByrne, HInvasive cells show changes in adhesion, motility and the protease-antiprotease balance. In this paper the authors derive a model based on a continuum approach that describes the behaviour of the invasive cells. The invasive cells are studied in the context of their interaction with normal cells, noninvasive tumour cells, ECM proteins and the proteases. The authors briefly describe the methods of mathematical analysis used and then go on to highlight the biological inferences drawn from the mathematical analysis. Based on the results from the modelling the authors suggest that the movement of cells under the simultaneous effects of a haptotactic gradient and a concomitantly created chemotactic gradient is oscillatory both with respect to the speed of invasion and the wave profile of the invasive cells. They further demonstrate that the average speed of invasion can be computed as a measure of the phenotypic properties of the cell and the matrix. They use the model to suggest an intuitive explanation for the occurrence of noninvasion with high protease expression on the basis of chemotactic gradients that prevent invasion. The authors have studied the effect of the diffusivity of the protease on an invading cell and shown that increase in diffusivity initially results in enhanced invasion, but extreme increases in protease diffusivity can result in noninvasion.
spellingShingle Perumpanani, A
Sherratt, J
Norbury, J
Byrne, H
Biological inferences from a mathematical model for malignant invasion.
title Biological inferences from a mathematical model for malignant invasion.
title_full Biological inferences from a mathematical model for malignant invasion.
title_fullStr Biological inferences from a mathematical model for malignant invasion.
title_full_unstemmed Biological inferences from a mathematical model for malignant invasion.
title_short Biological inferences from a mathematical model for malignant invasion.
title_sort biological inferences from a mathematical model for malignant invasion
work_keys_str_mv AT perumpanania biologicalinferencesfromamathematicalmodelformalignantinvasion
AT sherrattj biologicalinferencesfromamathematicalmodelformalignantinvasion
AT norburyj biologicalinferencesfromamathematicalmodelformalignantinvasion
AT byrneh biologicalinferencesfromamathematicalmodelformalignantinvasion