Methods for measuring the evolutionary stability of engineered genomes to improve their longevity

Author:

Nuismer Scott L12,C. Layman Nathan1ORCID,Redwood Alec J34ORCID,Chan Baca34,Bull James J1ORCID

Affiliation:

1. Department of Biological Sciences, University of Idaho, 875 Perimeter Dr, Moscow, Idaho 83844, USA

2. Department of Mathematics, University of Idaho, 875 Perimeter Dr, Moscow, Idaho 83844, USA

3. School of Biomedical Sciences, University of Western Australia, Perth, Western Australia, Australia

4. The Institute for Respiratory Health, Nedlands, Western Australia, Australia

Abstract

Abstract Diverse applications rely on engineering microbes to carry and express foreign transgenes. This engineered baggage rarely benefits the microbe and is thus prone to rapid evolutionary loss when the microbe is propagated. For applications where a transgene must be maintained for extended periods of growth, slowing the rate of transgene evolution is critical and can be achieved by reducing either the rate of mutation or the strength of selection. Because the benefits realized by changing these quantities will not usually be equal, it is important to know which will yield the greatest improvement to the evolutionary half-life of the engineering. Here, we provide a method for jointly estimating the mutation rate of transgene loss and the strength of selection favoring these transgene-free, revertant individuals. The method requires data from serial transfer experiments in which the frequency of engineered genomes is monitored periodically. Simple mathematical models are developed that use these estimates to predict the half-life of the engineered transgene and provide quantitative predictions for how alterations to mutation and selection will influence longevity. The estimation method and predictive tools have been implemented as an interactive web application, MuSe.

Funder

National Institutes of Health

Defense Advanced Research Projects Agency

Publisher

Oxford University Press (OUP)

Subject

Agricultural and Biological Sciences (miscellaneous),Biomedical Engineering,Biomaterials,Bioengineering,Biotechnology

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