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PMID: 17953751 Published · epublish English Journal Article Research Support, N.I.H., Extramural

Multiscale computational analysis of Xenopus laevis morphogenesis reveals key insights of systems-level behavior.

BMC systems biology ·Vol. 1 ·2007-10-22 ·Pages 46

Robertson SH, Smith CK, Langhans AL, McLinden SE, Oberhardt MA, Jakab KR, Dzamba B, DeSimone DW, Papin JA, Peirce SM

Abstract

Tissue morphogenesis is a complex process whereby tissue structures self-assemble by the aggregate behaviors of independently acting cells responding to both intracellular and extracellular cues in their environment. During embryonic development, morphogenesis is particularly important for organizing cells into tissues, and although key regulatory events of this process are well studied in isolation, a number of important systems-level questions remain unanswered. This is due, in part, to a lack of integrative tools that enable the coupling of biological phenomena across spatial and temporal scales. Here, we present a new computational framework that integrates intracellular signaling information with multi-cell behaviors in the context of a spatially heterogeneous tissue environment. We have developed a computational simulation of mesendoderm migration in the Xenopus laevis explant model, which is a well studied biological model of tissue morphogenesis that recapitulates many features of this process during development in humans. The simulation couples, via a JAVA interface, an ordinary differential equation-based mass action kinetics model to compute intracellular Wnt/beta-catenin signaling with an agent-based model of mesendoderm migration across a fibronectin extracellular matrix substrate. The emergent cell behaviors in the simulation suggest the following properties of the system: maintaining the integrity of cell-to-cell contact signals is necessary for preventing fractionation of cells as they move, contact with the Fn substrate and the existence of a Fn gradient provides an extracellular feedback loop that governs migration speed, the incorporation of polarity signals is required for cells to migrate in the same direction, and a delicate balance of integrin and cadherin interactions is needed to reproduce experimentally observed migratory behaviors. Our computational framework couples two different spatial scales in biology: intracellular with multicellular. In our simulation, events at one scale have quantitative and dynamic impact on events at the other scale. This integration enables the testing and identification of key systems-level hypotheses regarding how signaling proteins affect overall tissue-level behavior during morphogenesis in an experimentally verifiable system. Applications of this approach extend to the study of tissue patterning processes that occur during adulthood and disease, such as tumorgenesis and atherogenesis.

MeSH Terms
Animals Computer Simulation Gene Expression Regulation, Developmental/physiology Models, Biological Morphogenesis/physiology Organ Specificity Proteome/metabolism Signal Transduction/physiology Xenopus laevis/embryology,physiology
Chemicals
Proteome
Authors & Affiliations
10 authors, click to expand affiliations / ORCID
Robertson Scott H
Department of Biomedical Engineering, University of Virginia, Box 800759, Charlottesville, VA 22908, USA. [email protected]
Smith Chris K
Langhans Anna L
McLinden Sara E
Oberhardt Matthew A
Jakab Karoly R
Dzamba Bette
DeSimone Douglas W
Papin Jason A
Peirce Shayn M
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Article Info
Journal
BMC systems biology
Abbr.
BMC Syst Biol
ISSN
1752-0509
Published
2007-10-22
Epub
2007-00-22
Pages
46
Language
English
Region
England
NLM ID
101301827
PMCID
PMC2190763
Subset
IM
Grants
NICHD NIH HHS · R01 HD026402 · United States
NHLBI NIH HHS · R01 HL082838 · United States
NICHD NIH HHS · HD26402 · United States
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