28 research outputs found
Independent evolution of shape and motility allows evolutionary flexibility in Firmicutes bacteria
Functional morphological adaptation is an implicit assumption across many ecological studies. However, despite a few pioneering
attempts to link bacterial form and function, functional morphology is largely unstudied in prokaryotes. One intriguing
candidate for analysis is bacterial shape, as multiple lines of theory indicate that cell shape and motility should be strongly
correlated. Here we present a large-scale use of modern phylogenetic comparative methods to explore this relationship across
325 species of the phylum Firmicutes. In contrast to clear predictions from theory, we show that cell shape and motility are not
coupled, and that transitions to and from flagellar motility are common and strongly associated with lifestyle (free-living or
host-associated). We find no association between shape and lifestyle, and contrary to recent evidence, no indication that shape
is associated with pathogenicity. Our results suggest that the independent evolution of shape and motility in this group might
allow a greater evolutionary flexibility
Bacterial Flagella: Twist and Stick, or Dodge across the Kingdoms
The flagellum organelle is an intricate multiprotein assembly best known for its rotational propulsion of bacteria. However, recent studies have expanded our knowledge of other functions in pathogenic contexts, particularly adherence and immune modulation, e.g., for Salmonella enterica, Campylobacter jejuni, Pseudomonas aeruginosa, and Escherichia coli. Flagella-mediated adherence is important in host colonisation for several plant and animal pathogens, but the specific interactions that promote flagella binding to such diverse host tissues has remained elusive. Recent work has shown that the organelles act like probes that find favourable surface topologies to initiate binding. An emerging theme is that more general properties, such as ionic charge of repetitive binding epitopes and rotational force, allow interactions with plasma membrane components. At the same time, flagellin monomers are important inducers of plant and animal innate immunity: variation in their recognition impacts the course and outcome of infections in hosts from both kingdoms. Bacteria have evolved different strategies to evade or even promote this specific recognition, with some important differences shown for phytopathogens. These studies have provided a wider appreciation of the functions of bacterial flagella in the context of both plant and animal reservoirs
