Simulation of Soluble and Bound VEGF-stimulated in vitro Capillary-like Network Formation on Deformed Substrate

Author:

Chiang Hsun,Chung Chih-AngORCID

Abstract

Capillary plexus cultivation is crucial in tissue engineering and regenerative medicine. Theoretical simulations have been conducted to supplement the expensive experimental works. However, the mechanisms connecting mechanical and chemical stimuli remained undefined, and the functions of the different VEGF forms in the culture environment were still unclear. In this paper, we developed a hybrid model for simulating short-term in vitro capillary incubations. We used the Cellular Potts model to predict individual cell migration, morphology change, and continuum mechanics to quantify biogel deformation and VEGF transport dynamics. By bridging the mechanical regulation and chemical stimulation in the model, the results showed good agreement between the predicted network topology and experiments, in which elongated cells connected, forming the network cords and round cells gathered, creating cobblestone-like aggregates. The results revealed that the capillary-like networks could develop in high integrity only when the mechanical and chemical couplings worked adequately, with the cell morphology and haptotaxis driven by the soluble and bound forms of VEGF, respectively, functioning simultaneously.

Funder

National Science and Technology Council

Publisher

Public Library of Science (PLoS)

Reference68 articles.

1. Tissue engineering—current challenges and expanding opportunities;LG Griffith;science,2002

2. Tissue engineering: the challenges ahead;RS Langer;Scientific American,1999

3. Prospect of stem cells in bone tissue engineering: a review.;A-M Yousefi;Stem cells international,2016

4. In vitro models of vasculogenesis and angiogenesis;B Vailhé;Laboratory investigation,2001

5. Role of laminin and basement membrane in the morphological differentiation of human endothelial cells into capillary-like structures;Y Kubota;The Journal of cell biology,1988

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