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DOI10.1371/journal.pcbi.1002996
A Computational Model Predicting Disruption of Blood Vessel Development
Kleinstreuer, Nicole1; Dix, David1; Rountree, Michael1; Baker, Nancy2; Sipes, Nisha1; Reif, David1; Spencer, Richard2; Knudsen, Thomas1
发表日期2013-04-01
卷号9期号:4
英文摘要

Vascular development is a complex process regulated by dynamic biological networks that vary in topology and state across different tissues and developmental stages. Signals regulating de novo blood vessel formation (vasculogenesis) and remodeling (angiogenesis) come from a variety of biological pathways linked to endothelial cell (EC) behavior, extracellular matrix (ECM) remodeling and the local generation of chemokines and growth factors. Simulating these interactions at a systems level requires sufficient biological detail about the relevant molecular pathways and associated cellular behaviors, and tractable computational models that offset mathematical and biological complexity. Here, we describe a novel multicellular agent-based model of vasculogenesis using the CompuCell3D (http://www.compucell3d.org/) modeling environment supplemented with semi-automatic knowledgebase creation. The model incorporates vascular endothelial growth factor signals, pro- and anti-angiogenic inflammatory chemokine signals, and the plasminogen activating system of enzymes and proteases linked to ECM interactions, to simulate nascent EC organization, growth and remodeling. The model was shown to recapitulate stereotypical capillary plexus formation and structural emergence of non-coded cellular behaviors, such as a heterologous bridging phenomenon linking endothelial tip cells together during formation of polygonal endothelial cords. Molecular targets in the computational model were mapped to signatures of vascular disruption derived from in vitro chemical profiling using the EPA's ToxCast high-throughput screening (HTS) dataset. Simulating the HTS data with the cell-agent based model of vascular development predicted adverse effects of a reference anti-angiogenic thalidomide analog, 5HPP-33, on in vitro angiogenesis with respect to both concentration-response and morphological consequences. These findings support the utility of cell agent-based models for simulating a morphogenetic series of events and for the first time demonstrate the applicability of these models for predictive toxicology.


语种英语
WOS记录号WOS:000318069800008
来源期刊PLOS COMPUTATIONAL BIOLOGY
来源机构美国环保署
文献类型期刊论文
条目标识符http://gcip.llas.ac.cn/handle/2XKMVOVA/57143
作者单位1.US EPA, Natl Ctr Computat Toxicol, Off Res & Dev, Res Triangle Pk, NC 27711 USA;
2.Lockheed Martin, Res Triangle Pk, NC USA
推荐引用方式
GB/T 7714
Kleinstreuer, Nicole,Dix, David,Rountree, Michael,et al. A Computational Model Predicting Disruption of Blood Vessel Development[J]. 美国环保署,2013,9(4).
APA Kleinstreuer, Nicole.,Dix, David.,Rountree, Michael.,Baker, Nancy.,Sipes, Nisha.,...&Knudsen, Thomas.(2013).A Computational Model Predicting Disruption of Blood Vessel Development.PLOS COMPUTATIONAL BIOLOGY,9(4).
MLA Kleinstreuer, Nicole,et al."A Computational Model Predicting Disruption of Blood Vessel Development".PLOS COMPUTATIONAL BIOLOGY 9.4(2013).
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