International audienceProcesses of molecular innovation require tinkering and shifting in the function of existing genes. How this occurs in terms of molecular evolution at long evolutionary scales remains poorly understood. Here, we analyse the natural history of a vast group of membrane-associated molecular systems in Bacteria and Archaea-the type IV filament (TFF) superfamily-that diversified in systems involved in flagellar or twitching motility, adhesion, protein secretion, and DNA uptake. The phylogeny of the thousands of detected systems suggests they may have been present in the last universal common ancestor. From there, two lineages-a bacterial and an archaeal-diversified by multiple gene duplications, gene fissions and deletions,...
Les processus d'innovation moléculaire nécessitent le bricolage moléculaire et la cooptation des gèn...
Type IV pili (T4P) are surface-exposed protein fibers that play key roles in the bacterial life cycl...
How complex, multi-component macromolecular machines evolved remains poorly understood. Here we reve...
Processes of molecular innovation require tinkering and shifting in the function of existing genes. ...
International audienceProcesses of molecular innovation require tinkering and shifting in the functi...
Case studies of the evolution of molecular machines remain scarce. One of the most diverse and wides...
Process of molecular innovation require tinkering and the co-option of existing genes. But this proc...
International audienceBackground: As bacteria, motile archaeal species swim by means of rotating fla...
International audienceType 3 secretion systems (T3SSs) are essential components of two complex bacte...
Genetic exchange by conjugation is responsible for the spread of resistance, virulence and social tr...
Type 3 secretion systems (T3SSs) are essential components of two complex bacterial machineries: the ...
Genetic exchange by conjugation is responsible for the spread of resistance, virulence, and social t...
Genetic exchange by conjugation is responsible for the spread of resistance, virulence, and social t...
Motility often plays a decisive role in the survival of species. Five systems of motility have been ...
Motility often plays a decisive role in the survival of species. Five systems of motility have been ...
Les processus d'innovation moléculaire nécessitent le bricolage moléculaire et la cooptation des gèn...
Type IV pili (T4P) are surface-exposed protein fibers that play key roles in the bacterial life cycl...
How complex, multi-component macromolecular machines evolved remains poorly understood. Here we reve...
Processes of molecular innovation require tinkering and shifting in the function of existing genes. ...
International audienceProcesses of molecular innovation require tinkering and shifting in the functi...
Case studies of the evolution of molecular machines remain scarce. One of the most diverse and wides...
Process of molecular innovation require tinkering and the co-option of existing genes. But this proc...
International audienceBackground: As bacteria, motile archaeal species swim by means of rotating fla...
International audienceType 3 secretion systems (T3SSs) are essential components of two complex bacte...
Genetic exchange by conjugation is responsible for the spread of resistance, virulence and social tr...
Type 3 secretion systems (T3SSs) are essential components of two complex bacterial machineries: the ...
Genetic exchange by conjugation is responsible for the spread of resistance, virulence, and social t...
Genetic exchange by conjugation is responsible for the spread of resistance, virulence, and social t...
Motility often plays a decisive role in the survival of species. Five systems of motility have been ...
Motility often plays a decisive role in the survival of species. Five systems of motility have been ...
Les processus d'innovation moléculaire nécessitent le bricolage moléculaire et la cooptation des gèn...
Type IV pili (T4P) are surface-exposed protein fibers that play key roles in the bacterial life cycl...
How complex, multi-component macromolecular machines evolved remains poorly understood. Here we reve...