bioRxiv Science⌕ Search

Biology subjects

Millot, G.

Publications and source records attributed to Millot, G..

2 recordsLinked to original sources

Belt and braces: two escape ways to maintain the cassette reservoir of large chromosomal integrons

Integrons are adaptive devices that capture, stockpile, shuffle and express gene cassettes thereby sampling combinatorial phenotypic diversity. Some integrons called sedentary chromosomal integrons (SCIs) can be massive structures containing hundreds of cassettes. Since most of these cassettes are non-expressed, it is not clear how they remain stable over long evolutionary timescales. Recently, it was found that the experimental inversion of the SCI of Vibrio cholerae led to a dramatic increase of the cassette excision rate associated to a fitness defect. Here, we question the evolutionary sustainability of this apparently counter selected genetic context through experimental evolution. We find that the integrase is rapidly inactivated and that the inverted SCI can recover its original orientation by homologous recombination between two insertion sequences (ISs) present in the array. These two outcomes of SCI inversion restore the normal growth and prevent the loss of cassettes, enabling SCIs to retain their roles as reservoirs of functions. These results illustrate an interesting interplay between gene orientation, genome rearrangement, bacterial fitness and demonstrate how integrons can benefit from their embedded ISs.

genetics↗

A new route for integron cassette dissemination among bacterial genomes

Integrons are genetic elements involved in bacterial adaptation. They can capture, shuffle and express adaptive functions embedded in cassettes. These events are governed by the integron integrase through site-specific recombination between attC and attI integron sites. Here, we demonstrated that the integrase can efficiently catalyze insertion of cassettes in bacterial genomes, outside the att sites. We showed that, once inserted in genomes, cassettes can be expressed, if located near bacterial promoters, and can be excised at the insertion point and even outside, inducing chromosomal modifications in the latter case. Analysis of more than 5 x 105 independent insertion events revealed a very large genomic insertion landscape with recombination sites greatly different, in terms of sequence and structure, from classical att sites. We named these new sites attG. These results unveil a new efficient route for dissemination of adaptive functions and expand the role of integrons in bacterial evolution.

genetics↗