Fernando W. Rossine, Carlos Martínez Sánchez, Daniel S. Eaton, Johan Paulsson, Michael Baym
From populations of multicellular organisms to selfish genetic elements, conflicts between levels of biological organization are central to evolution. Plasmids are extrachromosomal, self-replicating genetic elements that face selective pressures from their hosts but also compete within the host cell for replication resources. Although theory indicates that within-cell selection matters for plasmid evolution, experimental measurement of these dynamics has remained elusive. We measured within-cell fitness of competing Escherichia coli plasmids and characterized their drift and selective dynamics. We made synthetic plasmid dimers that can be split in a controlled way to create balanced competition, which we probed experimentally. Incompatible plasmids coexist for an extended time owing to methylation-based replication control. Moreover, less transcriptionally active plasmids display a within-cell advantage and fix preferentially, favoring gene loss. Critically, fixation depends nontrivially on the interplay between plasmid transcription and translation. Our results show that plasmid evolution is driven by within- and between-cell dynamics.