Bifurcation Analysis of Gene Regulatory Circuits Subject to Copy Number Variation

dc.contributor.author

Mileyko, Yuriy

dc.contributor.author

Weitz, Joshua S

dc.date.accessioned

2011-06-21T17:27:53Z

dc.date.available

2011-06-21T17:27:53Z

dc.date.issued

2010

dc.description.abstract

Gene regulatory networks are comprised of many small gene circuits. Understanding expression dynamics of gene circuits for broad ranges of parameter space may provide insight into the behavior of larger regulatory networks as well as facilitate the use of circuits as autonomous units performing specific regulatory tasks. In this paper, we consider three common gene circuits and investigate the dependence of gene expression dynamics on the circuit copy number. In particular, we perform a detailed bifurcation analysis of the circuits' corresponding nonlinear gene regulatory models restricted to protein-only dynamics. Employing a geometric approach to bifurcation theory, we are able to derive closed form expressions for conditions which guarantee existence of saddle-node bifurcations caused by variation in the circuit copy number or copy number concentration. This result shows that the drastic effect of copy number variation on equilibrium behavior of gene circuits is highly robust to variation in other parameters in the circuits. We discuss a possibility of extending the current results to higher dimensional models which incorporate more details of the gene regulatory process.

dc.description.version

Version of Record

dc.identifier.citation

Mileyko,Yuriy;Weitz,Joshua S.. 2010. Bifurcation Analysis of Gene Regulatory Circuits Subject to Copy Number Variation. Siam Journal on Applied Dynamical Systems 9(3): 799-826.

dc.identifier.issn

1536-0040

dc.identifier.uri

https://hdl.handle.net/10161/4315

dc.language.iso

en_US

dc.publisher

Society for Industrial & Applied Mathematics (SIAM)

dc.relation.isversionof

10.1137/090771247

dc.relation.journal

Siam Journal on Applied Dynamical Systems

dc.subject

copy number variation

dc.subject

bifurcation theory

dc.subject

regulatory networks

dc.subject

construction

dc.subject

expression

dc.subject

networks

dc.subject

dynamics

dc.subject

systems

dc.subject

switch

dc.subject

mathematics, applied

dc.subject

physics, mathematical

dc.title

Bifurcation Analysis of Gene Regulatory Circuits Subject to Copy Number Variation

dc.title.alternative
dc.type

Other article

duke.date.pubdate

2010-00-00

duke.description.issue

3

duke.description.volume

9

pubs.begin-page

799

pubs.end-page

826

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