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A computational model of in vitro angiogenesis based on extracellular matrix fibre orientation
Authors:Lowell T Edgar  Scott C Sibole  Clayton J Underwood  James E Guilkey
Institution:1. Department of Bioengineering &2. Scientific Computing and Imaging Institute, University of Utah, , 72 South Central Campus Drive, Rm. 2646, Salt Lake City, UT84112, USA;3. Department of Mechanical Engineering &4. Scientific Computing and Imaging Institute, University of Utah, , Salt Lake City, UT, USA
Abstract:Recent interest in the process of vascularisation within the biomedical community has motivated numerous new research efforts focusing on the process of angiogenesis. Although the role of chemical factors during angiogenesis has been well documented, the role of mechanical factors, such as the interaction between angiogenic vessels and the extracellular matrix, remains poorly understood. In vitro methods for studying angiogenesis exist; however, measurements available using such techniques often suffer from limited spatial and temporal resolutions. For this reason, computational models have been extensively employed to investigate various aspects of angiogenesis. This paper outlines the formulation and validation of a simple and robust computational model developed to accurately simulate angiogenesis based on length, branching and orientation morphometrics collected from vascularised tissue constructs. Microvessels were represented as a series of connected line segments. The morphology of the vessels was determined by a linear combination of the collagen fibre orientation, the vessel density gradient and a random walk component. Excellent agreement was observed between computational and experimental morphometric data over time. Computational predictions of microvessel orientation within an anisotropic matrix correlated well with experimental data. The accuracy of this modelling approach makes it a valuable platform for investigating the role of mechanical interactions during angiogenesis.
Keywords:angiogenesis  computational model  tissue engineering  extracellular matrix  fibre orientation  matrix anisotropy
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