Range Expansion with Mutation and Selection: Dynamical Phase Transition in a Two-Species Eden Model
arXiv:1110.2639 · doi:10.1088/1367-2630/13/11/113013
Abstract
The colonization of unoccupied territory by invading species, known as range expansion, is a spatially heterogeneous non-equilibrium growth process. We introduce a two-species Eden growth model to analyze the interplay between uni-directional (irreversible) mutations and selection at the expanding front. While the evolutionary dynamics leads to coalescence of both wild-type and mutant clusters, the non-homogeneous advance of the colony results in a rough front. We show that roughening and domain dynamics are strongly coupled, resulting in qualitatively altered bulk and front properties. For beneficial mutations the front is quickly taken over by mutants and growth proceeds Eden-like. In contrast, if mutants grow slower than wild-types, there is an antagonism between selection pressure against mutants and growth by merging of mutant domains with an ensuing absorbing state phase transition to an all-mutant front. We find that surface roughening has a marked effect on the critical properties of the absorbing state phase transition. While reference models, which keep the expanding front flat, exhibit directed percolation critical behavior, the exponents of the two-species Eden model strongly deviate from it. In turn, the mutation-selection process induces an increased surface roughness with exponents distinct from that of the classical Eden model.
30 pages, 10 figures, accepted at New Journal of Physics
References in corpus (7)
- Genetic drift at expanding frontiers promotes gene segregation
- Mobility promotes and jeopardizes biodiversity in rock-paper-scissors games
- Gene surfing
- Self-Organization of Mobile Populations in Cyclic Competition
- The edge of neutral evolution in social dilemmas
- Three-fold way to extinction in populations of cyclically competing species
- Crossover scaling in the Domany-Kinzel cellular automaton
Cited by in corpus (22)
- Mechanically driven growth of quasi-two dimensional microbial colonies
- Mutational pathway determines whether drug gradients accelerate evolution of drug-resistant cells
- Chemical warfare and survival strategies in bacterial range expansions
- Experimental signatures of an absorbing-state phase transition in an open driven many-body quantum system
- Quantum contact process
- Evolutionary and Population Dynamics: A Coupled Approach
- Radial Domany-Kinzel Models with Mutation and Selection
- Asymmetric Mutualism in Two- and Three-Dimensional Range Expansions
- Survival Probabilities at Spherical Frontiers
- Mobility, fitness collection, and the breakdown of cooperation
- Range Expansion of Heterogeneous Populations
- Non-universality of front fluctuations for compact colonies of non-motile bacteria
- Bacterial range expansions on a growing front: Roughness, Fixation, and Directed Percolation
- Critical Fitness Collapse in Three-Dimensional Spatial Population Genetics
- Active-to-absorbing-state phase transition in an evolving population with mutation
- Shape of population interfaces as an indicator of mutational instability in coexisting cell populations
- Non-deterministic self-assembly of two tile types on a lattice
- Magnetic hierarchical deposition
- Cooperation in Microbial Populations: Theory and Experimental Model Systems
- Frequency-Dependent Selection at Rough Expanding Fronts
- Interface Collisions
- Branching structure of genealogies in spatially growing populations and its implications for population genetics inference