↓ Skip to main content

PLOS

A Two-Dimensional Model of the Colonic Crypt Accounting for the Role of the Basement Membrane and Pericryptal Fibroblast Sheath

Overview of attention for article published in PLoS Computational Biology, May 2012
Altmetric Badge

Mentioned by

twitter
1 X user

Citations

dimensions_citation
43 Dimensions

Readers on

mendeley
95 Mendeley
citeulike
1 CiteULike
Title
A Two-Dimensional Model of the Colonic Crypt Accounting for the Role of the Basement Membrane and Pericryptal Fibroblast Sheath
Published in
PLoS Computational Biology, May 2012
DOI 10.1371/journal.pcbi.1002515
Pubmed ID
Authors

Sara-Jane Dunn, Paul L. Appleton, Scott A. Nelson, Inke S. Näthke, David J. Gavaghan, James M. Osborne

Abstract

The role of the basement membrane is vital in maintaining the integrity and structure of an epithelial layer, acting as both a mechanical support and forming the physical interface between epithelial cells and the surrounding connective tissue. The function of this membrane is explored here in the context of the epithelial monolayer that lines the colonic crypt, test-tube shaped invaginations that punctuate the lining of the intestine and coordinate a regular turnover of cells to replenish the epithelial layer every few days. To investigate the consequence of genetic mutations that perturb the system dynamics and can lead to colorectal cancer, it must be possible to track the emerging tissue level changes that arise in the crypt. To that end, a theoretical crypt model with a realistic, deformable geometry is required. A new discrete crypt model is presented, which focuses on the interaction between cell- and tissue-level behaviour, while incorporating key subcellular components. The model contains a novel description of the role of the surrounding tissue and musculature, based upon experimental observations of the tissue structure of the crypt, which are also reported. A two-dimensional (2D) cross-sectional geometry is considered, and the shape of the crypt is allowed to evolve and deform. Simulation results reveal how the shape of the crypt may contribute mechanically to the asymmetric division events typically associated with the stem cells at the base. The model predicts that epithelial cell migration may arise due to feedback between cell loss at the crypt collar and density-dependent cell division, an hypothesis which can be investigated in a wet lab. This work forms the basis for investigation of the deformation of the crypt structure that can occur due to proliferation of cells exhibiting mutant phenotypes, experiments that would not be possible in vivo or in vitro.

X Demographics

X Demographics

The data shown below were collected from the profile of 1 X user who shared this research output. Click here to find out more about how the information was compiled.
Mendeley readers

Mendeley readers

The data shown below were compiled from readership statistics for 95 Mendeley readers of this research output. Click here to see the associated Mendeley record.

Geographical breakdown

Country Count As %
United States 6 6%
United Kingdom 2 2%
Spain 1 1%
Unknown 86 91%

Demographic breakdown

Readers by professional status Count As %
Researcher 25 26%
Student > Ph. D. Student 24 25%
Student > Master 15 16%
Student > Bachelor 7 7%
Student > Doctoral Student 7 7%
Other 11 12%
Unknown 6 6%
Readers by discipline Count As %
Agricultural and Biological Sciences 28 29%
Biochemistry, Genetics and Molecular Biology 14 15%
Engineering 9 9%
Medicine and Dentistry 8 8%
Computer Science 7 7%
Other 20 21%
Unknown 9 9%