Literature DB >> 25814336

Discrete limit and monotonicity properties of the Floquet eigenvalue in an age structured cell division cycle model.

Stéphane Gaubert1, Thomas Lepoutre2.   

Abstract

We consider a cell population described by an age-structured partial differential equation with time periodic coefficients. We assume that division only occurs within certain time intervals at a rate [Formula: see text] for cells who have reached minimal positive age (maturation). We study the asymptotic behavior of the dominant Floquet eigenvalue, or Perron-Frobenius eigenvalue, representing the growth rate, as a function of the maturation age, when the division rate [Formula: see text] tends to infinity (divisions become instantaneous). We show that the dominant Floquet eigenvalue converges to a staircase function with an infinite number of steps, determined by a discrete dynamical system. This indicates that, in the limit, the growth rate is governed by synchronization phenomena between the maturation age and the length of the time intervals in which division may occur. As an intermediate result, we give a sufficient condition which guarantees that the dominant Floquet eigenvalue is a nondecreasing function of the division rate. We also give a counter example showing that the latter monotonicity property does not hold in general.

Keywords:  Cell cycle; Circadian rhythms; Delay differential equations; Floquet eigenvalue; Perron-Frobenius theory; Structured PDEs

Mesh:

Year:  2015        PMID: 25814336     DOI: 10.1007/s00285-015-0874-3

Source DB:  PubMed          Journal:  J Math Biol        ISSN: 0303-6812            Impact factor:   2.259


  10 in total

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