Evolution in time-dependent fitness landscapes
Claus O. Wilke
Abstract
Evolution in changing environments is an important, but little studied aspect of the theory of evolution. The idea of adaptive walks in fitness landscapes has triggered a vast amount of research and has led to many important insights about the progress of evolution. Nevertheless, the small step to time-dependent fitness landscapes has most of the time not been taken. In this work, some elements of a theory of adaptive walks on changing fitness landscapes are proposed, and are subsequently applied to and tested on a simple family of time-dependent fitness landscapes, the oscillating NK landscapes, also introduced here. For these landscapes, the parameter governing the evolutionary dynamics is the fraction of static fitness contributions fS. For small fS, local optima are virtually non-existent, and the adaptive walk constantly encounters new genotypes, whereas for large fS, the evolutionary dynamics reduces to the one on static fitness landscapes. Evidence is presented that the transition between the two regimes is a 2nd order phase transition akin a percolation transition. For fS close to the critical point, a rich dynamics can be observed. The adaptive walk gets trapped in noisy limit cycles, and transitions from one noisy limit cycle to another occur sporadically.
Create a lesson
Related papers
A Variational Framework for Nonlinear Chemical Thermodynamics Employing the Maximum Energy Dissipation Principle
Adam Moroz
Retrievable but Unencountered: The Missing Exposure Denominator in Large Academic Ebook Collections
Jette Veenstra, Mauricio Munoz Arias
Where Energy Is Spent Sets the Depth of Kinetic Proofreading
Uğur Çetiner
On the Role of Dispersion in One Model of Propagation of Elastic Excitations in Nerves
Alexander I. Kozlov
Quantifying the Biophysical Properties of Red Blood Cells in Gaucher Disease
Zhaojie Chai, Marine de Person, Pierre A. Buffet et al.
Roles of vortices and turbulent eddies in particle preferential concentration and deposition in the human respiratory tract
Mengtao Li, Yawei Wang, Wentao Feng et al.