An Approximate Bayesian Computation Approach for Modeling Genome Rearrangements

Author:

Moshe Asher1,Wygoda Elya1,Ecker Noa1,Loewenthal Gil1,Avram Oren1ORCID,Israeli Omer1,Hazkani-Covo Einat2,Pe’er Itsik3,Pupko Tal1ORCID

Affiliation:

1. The Shmunis School of Biomedicine and Cancer Research, George S. Wise Faculty of Life Sciences, Tel Aviv University , Tel Aviv 69978 , Israel

2. Department of Natural and Life Sciences, Open University of Israel , Ra'anana , Israel

3. Department of Computer Science, Columbia University , New York , USA

Abstract

Abstract The inference of genome rearrangement events has been extensively studied, as they play a major role in molecular evolution. However, probabilistic evolutionary models that explicitly imitate the evolutionary dynamics of such events, as well as methods to infer model parameters, are yet to be fully utilized. Here, we developed a probabilistic approach to infer genome rearrangement rate parameters using an Approximate Bayesian Computation (ABC) framework. We developed two genome rearrangement models, a basic model, which accounts for genomic changes in gene order, and a more sophisticated one which also accounts for changes in chromosome number. We characterized the ABC inference accuracy using simulations and applied our methodology to both prokaryotic and eukaryotic empirical datasets. Knowledge of genome-rearrangement rates can help elucidate their role in evolution as well as help simulate genomes with evolutionary dynamics that reflect empirical genomes.

Funder

Israel Science Foundation

Publisher

Oxford University Press (OUP)

Subject

Genetics,Molecular Biology,Ecology, Evolution, Behavior and Systematics

Reference35 articles.

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